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{{short description|Rock consisting of cryptocrystalline silica alternating with microgranular quartz}}
{{Short description|Banded variety of chalcedony}}
{{other uses}}
{{Other uses}}
{{Good article}}
{{Infobox mineral
{{Infobox mineral
| name = Agate
| name = Agate
| category = [[Chalcedony]] variety
| category = [[Tectosilicate]] minerals
| group = [[Quartz]] group
| IMAstatus = [[Mineral variety|Variety]] of quartz ([[chalcedony]])
| boxwidth =
| boxwidth =
| boxbgcolor =#bb361c
| boxbgcolor =#bb361c
| boxtextcolor = #fff
| boxtextcolor = #fff
| image = Mexican Crazy Lace Agate - World's Best.jpg
| image = Malawi Agate (Malawi, southeastern Africa) (32734668126).jpg
| imagesize = 260px
| imagesize = 260px
| caption = {{cvt|19.6|kg|lb|0}} specimen of "Crazy Lace" agate from Chihuahua, Mexico next to a tennis ball; {{cvt|38.2|cm|in}} wide
| caption = Polished agate nodule from Malawi, Africa
| formula = SiO<sub>2</sub> ([[silicon dioxide]])
| formula = SiO<sub>2</sub> ([[silicon dioxide]])
|IMAsymbol=Aga<ref>{{cite journal |last=Warr|first=L. N. |date=2021 |title=IMA–CNMNC approved mineral symbols |journal=[[Mineralogical Magazine]] |volume=85 |issue=3 |pages=291–320 |doi=10.1180/mgm.2021.43 |bibcode=2021MinM...85..291W |s2cid=235729616 |doi-access=free}}</ref>
| molweight =
| molweight =
| color = banded
| color = Often multicolored; commonly colorless, pale blue to black, red to orange, yellow, white, brown, pink, purple; rarely green
| habit = [[Cryptocrystalline]] silica
| habit = [[Cryptocrystalline]] silica
| system = [[Trigonal]] or [[monoclinic]]
| system = [[Trigonal]] ([[quartz]]) or [[monoclinic]] ([[moganite]])
| twinning =
| twinning =
| cleavage = None
| cleavage = None
| fracture = [[conchoidal fracture|Conchoidal]], with very sharp edges
| fracture = [[conchoidal fracture|Conchoidal]]
| mohs = 6.5–7
| mohs = 6.5–7
| luster = Waxy
| luster = Waxy, vitreous when polished
| refractive = 1.530–1.540
| refractive = 1.530-1.543
| opticalprop =
| opticalprop = Uniaxial (+)
| birefringence = up to +0.004 (B-G)
| birefringence = Up to 0.004
| dispersion= None
| pleochroism = Absent
| pleochroism = Absent
| streak = White
| streak = White
| gravity = 2.58–2.64
| gravity = 2.60–2.64
| density =
| density = 2.6 g/cm<sup>3</sup>
| melt =
| melt =
| tenacity = Brittle
| fusibility =
| fusibility =
| diagnostic =
| diagnostic =
| solubility =
| solubility =
| diaphaneity = Translucent
| diaphaneity = Transparent to opaque (usually translucent)
| other =
| other =
| references= <ref name="mindat" /><ref>{{cite web |title=Agate |url=https://www.gemdat.org/gem-51.html |website=gemdat.org |access-date=9 March 2025}}</ref><ref>{{cite web |title=Agate Value, Price, and Jewelry Information |url=https://www.gemsociety.org/article/agate-gem-information/ |website=gemsociety.org |publisher=International Gem Society |access-date=9 March 2025}}</ref>
}}
}}


'''Agate''' ({{IPAc-en|ˈ|æ|ɡ|ɪ|t}}) is the banded variety of [[chalcedony]],<ref>{{cite journal |last1=Wang|first1=Yifeng |last2=Merino|first2=Enrique |date=1990-06-01 |title=Self-organizational origin of agates: Banding, fiber twisting, composition, and dynamic crystallization model |journal=[[Geochimica et Cosmochimica Acta]] |language=en |volume=54 |issue=6 |pages=1627–1638 |doi=10.1016/0016-7037(90)90396-3 |bibcode=1990GeCoA..54.1627W |issn=0016-7037}}</ref> which comes in a wide variety of colors. Agates are primarily formed within [[volcanic rock|volcanic]] and [[metamorphic rock]]s. The ornamental use of agate was common in [[Ancient Greece]], in assorted [[jewelry]] and in the [[seal stone]]s of Greek warriors,<ref>{{cite magazine |url=https://smithsonianmag.com/smart-news/masterpiece-greek-art-found-griffin-warrior-tomb-180967141 |title=Masterpiece of Greek Art Found in the Griffin Warrior Tomb |magazine=[[Smithsonian (magazine)|Smithsonian]] |publisher=[[Smithsonian Institution]] |date=7 November 2017}}</ref> while bead necklaces with pierced and polished agate date back to the [[3rd millennium BCE]] in the [[Indus Valley civilisation]].
'''Agate''' ({{IPAc-en|ˈ|æ|ɡ|ɪ|t}} {{respell|AG|it}}) is a variously translucent, banded variety of [[chalcedony]]. Agate stones are characterized by alternating bands of different colored chalcedony and may also include visible [[quartz]] crystals. They are common in nature and can be found globally in a large number of different varieties. There are some varieties of chalcedony without bands that are commonly called agate ([[moss agate]], [[fire agate]], etc.); however, these are not true agates. Moreover, not every banded chalcedony is an agate; for example, banded [[chert]] forms via different processes and is opaque. Agates primarily form as nodules within [[volcanic rock]], but they can also form in [[Vein (geology)|veins]] or [[Silicification|silicified]] fossils. Agate has been popular as a [[gemstone]] in [[Jewellery|jewelry]] for thousands of years, and today it is also popular as a collector's stone. Some duller agates sold commercially are artificially treated to enhance their color.


==Etymology ==
==Etymology ==
The stone was given its name by [[Theophrastus]], a [[Greeks|Greek]] [[philosopher]] and [[naturalist]], who discovered the stone along the shore line of the [[Dirillo|Dirillo River]] or Achates ({{lang-grc|Ἀχάτης}}) in [[Sicily]],<ref>{{cite web
Agate was given its name by [[Theophrastus]], a [[Greeks|Greek]] [[philosopher]] and [[naturalist]]. He discovered the stone {{circa|350 BCE}} along the shoreline of the River Achates ({{langx|grc|Ἀχάτης}}), now the [[Dirillo|Dirillo River]], on the [[Italy|Italian]] island of [[Sicily]], which at the time was a Greek territory.<ref name="pabian" />{{rp|pp=52,162}}
|url=http://www.gem.org.au/agate.htm
|title=Agate Creek Agate
|access-date=2007-07-01
|archive-url=https://web.archive.org/web/20070716052933/http://www.gem.org.au/agate.htm
|archive-date=16 July 2007
|url-status=dead
}}</ref> sometime between the 4th and 3rd centuries BCE.<ref>{{cite web|url=https://www.perseus.tufts.edu/cgi-bin/ptext?doc=Perseus%3Atext%3A1999.04.0057%3Aentry%3D%2318659|title=Achates|access-date=19 September 2014|archive-date=26 August 2023|archive-url=https://web.archive.org/web/20230826164742/http://www.perseus.tufts.edu/hopper/invalidquery.jsp?doc=Perseus:text:1999.04.0057:entry=entry=|url-status=live}}</ref>


==Formation and properties==
==Composition==
[[File:Faceted Botswana agate.jpg|thumb|Botswana agate]]
Agate is composed principally of chalcedony,<ref name="mindat" /> a [[Microscopic scale|microscopic]] ([[microcrystalline]]) and submicroscopic ([[cryptocrystalline]]) form of quartz that grows in fibers. The chemical composition of quartz is {{chem2|SiO2}}, also known as [[silica]]. Normally, between 1% and 20% of the "quartz" in chalcedony is actually [[moganite]], a quartz [[Crystal polymorphism|polymorph]].<ref name="chalcedony" /> Unlike [[Macroscopic scale|macroscopic]] (macrocrystalline) quartz, which is [[anhydrous]], chalcedony normally contains very small amounts of water bound to its crystal structure.<ref name="chalcedony" /><ref name="pabian" />{{rp|p=11}}
[[File:Agate- & quartz-lined geode 5 (32375570960).jpg|thumb|Hollow agate]]


Agate minerals have the tendency to form on or within pre-existing rocks, creating difficulties in accurately determining their time of formation.<ref>{{Cite web|url=https://www.mindat.org/min-51.html|title=Agate: Mineral information, data and localities.|website=www.mindat.org|access-date=2020-02-11|archive-date=2020-02-15|archive-url=https://web.archive.org/web/20200215130856/https://www.mindat.org/min-51.html|url-status=live}}</ref> Their host rocks have been dated to have formed as early as the [[Archean]] Eon. Agates are most commonly found as [[Nodule (geology)|nodule]]s within the cavities of [[volcanic rock]]s. These cavities are formed from the gases trapped within the liquid volcanic material forming [[Vesicle (geology)|vesicles]].<ref name=":22">{{Cite journal|url=https://pubs.geoscienceworld.org/gsa/minmag/article/70/5/485/140307|title=Agate and chalcedony from igneous and sedimentary hosts aged from 13 to 3480 Ma: a cathodoluminescence study|last=T|first=Moxon|journal=Mineralogical Magazine|volume=70|issue=5|pages=485–498|access-date=October 1, 2006|doi=10.1180/0026461067050347|year=2006|bibcode=2006MinM...70..485M|s2cid=54607138|archive-date=March 13, 2022|archive-url=https://web.archive.org/web/20220313041353/https://pubs.geoscienceworld.org/gsa/minmag/article/70/5/485/140307|url-status=live}}</ref> Cavities are then filled in with silica-rich fluids from the volcanic<ref name=":22" /> material, layers are deposited on the walls of the cavity slowly working their way inwards.<ref>{{Cite web|url=https://www.ingentaconnect.com/content/schweiz/njma/2009/00000186/00000002/art00001|title=The formation of agate structures: models for silica transport, agate layer accretion, and for flow patterns and flow regimes in infiltration channels|last1=Walger|first1=Eckart|last2=Mattheß|first2=Georg|date=August 2009|website=www.ingentaconnect.com|language=en|access-date=March 3, 2020|last3=von Seckendorff|first3=Volker|last4=Liebau|first4=Friedrich|archive-date=June 4, 2018|archive-url=https://web.archive.org/web/20180604062121/https://www.ingentaconnect.com/content/schweiz/njma/2009/00000186/00000002/art00001|url-status=live}}</ref> The first layer deposited on the cavity walls is commonly known as the priming layer.<ref name=":12">{{Cite web|url=https://stonetreasuresbythelake.com/pages/yellow-skin-agate|title=Metaphysical Properties of Yellow Skin Agate - Stone Treasures|website=Stone Treasures by the Lake|date=24 March 2019|language=en|access-date=2020-02-27|archive-date=2020-02-26|archive-url=https://web.archive.org/web/20200226214216/https://stonetreasuresbythelake.com/pages/yellow-skin-agate|url-status=live}}</ref> Variations in the character of the solution or in the conditions of deposition may cause a corresponding variation in the successive layers. These variations in layers result in bands of [[chalcedony]], often alternating with layers of crystalline [[quartz]] forming banded agate.<ref name=":22" /> Hollow agates can also form due to the deposition of liquid-rich silica not penetrating deep enough to fill the cavity completely.<ref name=":02">{{Cite web|url=http://www.minerals.net/MineralDefinition.aspx?name=agate|title=Agate chalcedony: The mineral Agate information and pictures|website=www.minerals.net|language=en-US|access-date=2020-02-27|archive-date=2020-03-16|archive-url=https://web.archive.org/web/20200316005135/https://www.minerals.net/MineralDefinition.aspx?name=agate|url-status=live}}</ref> Agate will form crystals within the reduced cavity, and the apex of each crystal may point towards the center of the cavity.
Agate contains multiple layers, or bands, of chalcedony fibers.<ref name="mindat" /> The fibers are twisted,<ref>{{cite journal |last1=Wang|first1=Yifeng |last2=Merino|first2=Enrique |date=1990-06-01 |title=Self-organizational origin of agates: Banding, fiber twisting, composition, and dynamic crystallization model |journal=[[Geochimica et Cosmochimica Acta]] |language=en |volume=54 |issue=6 |pages=1627–1638 |doi=10.1016/0016-7037(90)90396-3 |bibcode=1990GeCoA..54.1627W |issn=0016-7037}}</ref><ref name="pabian" />{{rp|p=11}} forming a [[helix|helical]] shape.<ref name="PSU" /> There are two different types of chalcedony fibers: length-slow (also known as ''quartzine'') and length-fast. Agate primarily contains length-fast chalcedony fibers, consisting of crystals stacked perpendicular to the c-axis (side to side). Some intergrown quartzine may also be present, consisting of quartz crystals stacked parallel to the c-axis (tip to tip).<ref name="chalcedony">{{cite web |title=Chalcedony |url=https://www.mindat.org/min-960.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=18 September 2025}}</ref>


The priming layer is often dark green, but can be modified by [[iron oxide]] resulting in a rust like appearance.<ref name=":12" /> Agate is very durable, and is often found detached from its host matrix, which has eroded away. Once removed, the outer surface is usually pitted and rough from filling the cavity of its former matrix. Agates have also been found in [[sedimentary rock]]s,<ref name=":22" /> normally in [[limestone]] or [[Dolomite (rock)|dolomite]]; these sedimentary rocks acquire cavities often from decomposed branches or other buried organic material. If silica-rich fluids are able to penetrate into these cavities agates can be formed.<ref name=":22" />
Agate can sometimes contain small amounts of [[opal]], an [[amorphous]], hydrated form of silica.<ref name="pabian" />{{rp|p=11}} Agates also frequently contain macrocrystalline quartz, particularly in the center.<ref name="lynch formation" /><ref name="pabian" />{{rp|p=18}}


==Types==
==Formation==
''Lace agate'' is a variety that exhibits a [[lace]]-like pattern with forms such as eyes, swirls, bands or zigzags. ''Blue lace agate'' is found in Africa and is especially hard.<ref>{{Cite book|last1=Simmons|first1=Robert|url=https://books.google.com/books?id=-46X8VXHA_UC&q=lace+agate&pg=PA7|title=The Book of Stones: Who They Are and What They Teach|last2=Ahsian|first2=Naisha|date=2007|publisher=North Atlantic Books|isbn=978-1-55643-668-0|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164744/https://books.google.com/books?id=-46X8VXHA_UC&q=lace+agate&pg=PA7|url-status=live}}</ref> ''Crazy lace agate,'' typically found in Mexico, is often brightly colored with a complex pattern, demonstrating randomized distribution of contour lines and circular droplets, scattered throughout the rock. The stone is typically coloured red and white but is also seen to exhibit yellow and grey combinations as well.<ref>{{Cite book|last1=Atkinson|first1=Bill|url=https://books.google.com/books?id=ZSP94tREw7AC&q=Crazy+lace+agate&pg=PA165|title=Within the Stone: Photography|last2=Ackerman|first2=Diane|date=2004|publisher=BrownTrout Publishers|isbn=978-0-7631-8189-5|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164751/https://books.google.com/books?id=ZSP94tREw7AC&q=Crazy+lace+agate&pg=PA165|url-status=live}}</ref>
[[File:Agate- & quartz-lined geode 5 (32375570960).jpg|thumb|Agate geode]]


''Moss agate'', as the name suggests, exhibits a moss-like pattern and is of a greenish colour. The coloration is not created by any vegetative growth, but rather through the mixture of chalcedony and oxidized iron hornblende. ''Dendritic agate'' also displays vegetative features, including fern-like patterns formed due to the presence of manganese and iron oxides.<ref>{{Cite book|last=Schumann|first=Walter|url=https://books.google.com/books?id=V9PqVxpxeiEC&q=moss+agate&pg=PA146|title=Gemstones of the World|date=2009|publisher=Sterling Publishing Company, Inc.|isbn=978-1-4027-6829-3|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164743/https://books.google.com/books?id=V9PqVxpxeiEC&q=moss+agate&pg=PA146|url-status=live}}</ref>
Geologists generally understand the early stages of agate formation, but the specific processes that result in band development are widely debated. Since they form in cavities within host rock, agate formation cannot be directly observed,<ref name="lynch formation" /> and agate banding has never been successfully replicated in the lab.<ref name="PSU">{{cite web |last1=Brown |first1=Nancy Marie |title=How Do Agates Form? |url=https://www.psu.edu/news/research/story/how-do-agates-form |website=psu.edu |publisher=The Pennsylvania State University |date=31 August 2001|access-date=3 March 2025}}</ref><ref name="moxon 2017">{{cite journal |last1=Moxon |first1=Terry |title=A re-examination of water in agate and its bearing on the agate genesis enigma |journal=Mineralogical Magazine |date=October 2017 |volume=81 |issue=5 |pages=1223–1244 |doi=10.1180/minmag.2017.081.002 |bibcode=2017MinM...81.1223M |url=https://www.cambridge.org/core/journals/mineralogical-magazine/article/abs/reexamination-of-water-in-agate-and-its-bearing-on-the-agate-genesis-enigma/81967BDA3CFFBCE5CD23385B8BF47752 |url-access=subscription |access-date=16 October 2025}}</ref>


''Turritella agate'' (''[[Elimia tenera]])'' is formed from the shells of fossilized freshwater [[Turritella]] [[gastropod]]s with elongated spiral shells. Similarly, [[coral]], [[petrified wood]], porous rocks and other organic remains can also form agate.<ref>{{Cite book|last=Grant|first=Ember|url=https://books.google.com/books?id=FSAcDAAAQBAJ&q=Turritella+agate&pg=PT118|title=The Second Book of Crystal Spells: More Magical Uses for Stones, Crystals, Minerals... and Even Salt|date=2016-06-08|publisher=Llewellyn Worldwide|isbn=978-0-7387-4844-3|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164746/https://books.google.com/books?id=FSAcDAAAQBAJ&q=Turritella+agate&pg=PT118|url-status=live}}</ref>
{{anchor|Nodular agate}}Agates are most commonly found as [[Nodule (geology)|nodules]] within the cavities of volcanic rocks<ref name="Moxon" /> such as [[basalt]], [[andesite]], and [[rhyolite]]. These cavities, called [[Vesicle (geology)|''vesicles'']] (''amygdaloids'' when filled),<ref name="pabian" />{{rp|p=12}} are gas bubbles that were trapped inside the lava when it cooled.<ref name="Moxon">{{Cite journal |last1=Moxon |first1=T |last2=Reed |first2=S. J. B. |year=2006 |title=Agate and chalcedony from igneous and sedimentary hosts aged from 13 to 3480 Ma: a cathodoluminescence study |url=https://pubs.geoscienceworld.org/gsa/minmag/article/70/5/485/140307 |url-status=live |journal=Mineralogical Magazine |volume=70 |issue=5 |pages=485–498 |bibcode=2006MinM...70..485M |doi=10.1180/0026461067050347 |s2cid=54607138 |archive-url=https://web.archive.org/web/20220313041353/https://pubs.geoscienceworld.org/gsa/minmag/article/70/5/485/140307 |archive-date=March 13, 2022 |access-date=October 1, 2006|url-access=subscription }}</ref><ref name="lynch formation">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=11–13}}</ref><ref name="pabian" />{{rp|p=12}} The vesicles are later filled with hot, silica-rich water from the surrounding environment, forming a silica gel. This gel crystallizes through a complex process to form agates.<ref name="pabian" />{{rp|pp=12–15}} Since agates usually form in lavas poor in free silica, there are multiple theories of where the silica originates from, including micro-shards of silica glass from [[volcanic ash]] or [[tuff]] deposits and decomposing plant or animal matter.<ref name="pabian" />{{rp|p=11}} Agates are much harder than the rocks they form in; some varieties (e.g. [[Lake Superior agate]]s) are frequently found detached from their host rock.<ref name="pabian" />{{rp|p=84}}


''Coldwater agates'', such as the Lake Michigan cloud agate, did not form under volcanic processes, but instead formed within the [[limestone]] and dolomite strata of marine origin. Like volcanic-origin agates, Coldwater agates formed from silica gels that lined pockets and seams within the bedrock. These agates are typically less colorful, with banded lines of grey and white chalcedony.<ref>{{Cite book|last=Garvin|first=Paul|url=https://books.google.com/books?id=3a1XkpBGdAcC&q=Coldwater+agates&pg=PA65|title=Iowa's Minerals: Their Occurrence, Origins, Industries, and Lore|date=2010-09-13|publisher=University of Iowa Press|isbn=978-1-60938-014-4|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164756/https://books.google.com/books?id=3a1XkpBGdAcC&q=Coldwater+agates&pg=PA65|url-status=live}}</ref>
{{anchor|Wall-banded agate}}In ''wall-banded agates'', chalcedony fibers grow radially from the vesicle walls inward, perpendicular to the direction of the bands.<ref name="mindat">{{Cite web |title=Agate |url=https://www.mindat.org/min-51.html |access-date=10 February 2025 |website=mindat.org |publisher=Hudson Institute of Mineralogy}}</ref><ref>{{Cite journal|url=https://www.ingentaconnect.com/content/schweiz/njma/2009/00000186/00000002/art00001|title=The formation of agate structures: models for silica transport, agate layer accretion, and for flow patterns and flow regimes in infiltration channels|last1=Walger|first1=Eckart|last2=Mattheß|first2=Georg|date=August 2009|journal=Neues Jahrbuch für Mineralogie - Abhandlungen|language=en|access-date=March 3, 2020|last3=von Seckendorff|first3=Volker|last4=Liebau|first4=Friedrich|volume=186 |issue=2 |pages=113–152 |doi=10.1127/0077-7757/2009/0141 |bibcode=2009NJMA..186..113W |archive-date=June 4, 2018|archive-url=https://web.archive.org/web/20180604062121/https://www.ingentaconnect.com/content/schweiz/njma/2009/00000186/00000002/art00001|url-status=live}}</ref> The vesicle walls are often coated with thin layers of [[celadonite]] or [[chlorite]],<ref name="lynch formation"/><ref name="pabian" />{{rp|p=18}} soft, green [[phyllosilicate]] minerals that form from the reaction of hot, silica-rich water with the rock.<ref name="lynch formation" /> This coating provides a rough surface for the chalcedony fibers to form on, initially as radial [[spherulite]]s. The rough surface also causes agate husks to have a pitted appearance once the coating has been weathered away or removed.<ref name="pabian" />{{rp|pp=18–19}} Sometimes, the spherulites grow around mineral inclusions, resulting in eyes, tubes, and sagenitic agates.<ref name="mindat" />


''Greek agate'' is a name given to pale white to tan colored agate found in the former Greek colony of [[Sicily]] as early as 400 BCE. The Greeks used it for making jewelry and beads.
The first layer of spherulitic chalcedony is typically clear, followed by successive growth bands of chalcedony alternated with chemically precipitated color bands, primarily [[iron oxides]].<ref name="pabian" />{{rp|p=13}} The center is often macrocrystalline quartz,<ref name="lynch formation" /> which can also occur in bands and possibly forms when there is not enough chemically bound water in the silica gel to promote chalcedony [[polymerization]].<ref name="pabian" />{{rp|p=18}} When the silica concentration of the gel is too low, a hollow center forms, called an agate ''geode''. In geodes, quartz forms crystals around the cavity, with the apex of each crystal pointing towards the center. Occasionally, quartz in agates may be colored, occurring in [[Mineral variety|varieties]] such as [[amethyst]] or [[smoky quartz]].<ref name="pabian" />{{rp|p=17}}


''Brazilian agate'' is found as sizable geodes of layered nodules. These occur in brownish tones inter-layered with white and gray. It is often dyed in various colors for ornamental purposes.
{{anchor|Level-banded agate}}''Level-banded agates'' form when chalcedony precipitates out of solution in the direction of gravity, resulting in horizontal layers of microscopic chalcedony spherulites.<ref name="mindat" /> Level banding commonly occurs together with wall banding, often forming at the base of the vesicle or in the center when the gel stops adhering to the vesicle walls. This is probably due to a decrease in bound water in the gel. Level-banded agate is less dense and less compact than wall-banded agate, as it is less fibrous and more granular.<ref name="pabian" />{{rp|p=19}}


''Polyhedroid agate'' forms in a flat-sided shape similar to a [[polyhedron]]. When sliced, it often shows a characteristic layering of concentric [[polygon]]s. It has been suggested that growth is not crystallographically controlled but is due to the filling-in of spaces between pre-existing crystals which have since dissolved.
[[Enhydro agate|''Enhydro agates'']], or ''enhydros'', form when liquid water becomes trapped within an agate (or chalcedony) nodule or geode, often long after its formation.<ref>{{cite book |last1=Bates |first1=R. L. |last2=Jackson |first2=J. A. |title=Glossary of Geological Terms |date=1987 |publisher=American Geological Institute |location=Alexandria, Virginia |page=788 |edition=3rd |url=https://www.gamineral.org/writings/enhydros-gray.html |access-date=9 March 2025}}</ref><ref>{{cite web |title=Enhydro Agate |url=https://www.mindat.org/min-7596.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=9 March 2025}}</ref>


''Iris agate'' is a finely-banded and usually colorless agate, that when thinly sliced, exhibits spectral decomposition of white light into its constituent colors, requiring 400 to up to 30,000 bands per inch.<ref>{{cite web | url=http://www.minsocam.org/msa/collectors_corner/arc/iris.htm | title=Iris Agate | access-date=2022-05-27 | archive-date=2022-07-01 | archive-url=https://web.archive.org/web/20220701101334/http://www.minsocam.org/msa/collectors_corner/arc/iris.htm | url-status=live }}</ref>
{{anchor|Vein agate}}Agates can also form within rock fissures, called ''veins''.<ref name="pabian" />{{rp|pp=11–12}} Vein agates form in a manner similar to nodular agates (see above),<ref name="pabian" />{{rp|p=13}} and they include lace agates such as [[blue lace agate]] and crazy lace agate. Veins may form in either volcanic rock or [[Sedimentary rock|sedimentary]] rock.<ref name="pabian" />{{rp|p=50}}


Other forms of agate include ''Holley blue agate'' (also spelled "Holly blue agate"), a rare dark blue ribbon agate found only near [[Holley, Oregon]]; [[Lake Superior agate]]; ''Carnelian agate'' (has reddish hues); ''Botswana agate''; ''plume agate''; ''[[condor agate]]''; ''tube agate'' containing visible flow channels or pinhole-sized "tubes"; ''fortification agate'' with contrasting concentric banding reminiscent of defensive ditches and walls around ancient forts; ''[[Binghamite]]'', a variety found only on the Cuyuna iron range (near Crosby) in Crow Wing County, Minnesota; ''[[fire agate]]'' showing an iridescent, internal flash or "fire," the result of a layer of clear agate over a layer of hydrothermally deposited hematite; ''[[Patuxent River stone]]'', a red and yellow form of agate only found in [[Maryland]]; and ''[[enhydro agate]]'', which contains tiny inclusions of water, sometimes with air bubbles.
Less commonly, agates can form as nodules within sedimentary rocks such as [[limestone]], [[Dolomite (rock)|dolomite]] or tuff. These agates form when silica replaces another mineral, or silica-rich water fills cavities left by decomposed plant or animal matter.<ref name="pabian" />{{rp|p=11–12}} {{anchor|Fossil agate}}Sedimentary agates also include ''fossil agates'', which form when silica replaces the original composition of an organic material.<ref>{{cite web |title=Fossil Agate |url=https://www.mindat.org/min-7603.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=9 March 2025}}</ref> This process is called [[silicification]], a form of [[petrification]]. Examples include [[petrified wood]],<ref>{{cite web |title=Petrified Wood |url=https://www.mindat.org/min-8018.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=9 March 2025}}</ref> agatized coral,<ref>{{cite web |title=Agatized coral |url=https://www.mindat.org/min-43510.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=9 March 2025}}</ref> and Turritella agate (''[[Elimia tenera]]'').<ref name="turritella" /> Although these fossils are often referred to as being "agatized", they are only true agates if they contain bands.<ref name="mindat" />


Agate is a versatile gemstone that is often used in jewelry making. Agate is favored for its durability, with a [[Mohs scale]] hardness rating of 6.5-7.  It is known for its colorful, banded patterns and wide range of hues.  Agate is found in a wide range of colors, including shades of red, orange, yellow, green, blue, purple, and pink, as well as black and white.   Agate is generally more affordable than other gemstones.
==Structural varieties==
Agates are broadly separated into two categories based on the type of banding they exhibit.<ref name="lynch water-level" /><ref name="pabian" />{{rp|pp=24,36}} ''[[#Wall-banded agate|Wall banding]]'', also called ''concentric banding'' or ''adhesional banding'', occurs when agate bands follow the shape of the cavity they formed in. ''[[#Level-banded agate|Level banding]]'', also called ''water-level banding,'' ''gravitational banding'', ''horizontal banding'', ''parallel banding'', or ''Uruguay-type banding'', occurs when agate bands form in straight, parallel lines. Level banding is less common and usually occurs together with wall banding.<ref name="mindat" />
[[File:Agate 6 (32375570980).jpg|thumb|center|200px|Agate exhibiting wall banding (top) and level banding (bottom)]]


=== Wall-banded agates ===
{{anchor|Fortification agate}}''Fortification agates'' are any wall-banded agates with tight, well-defined bands.<ref name="pabian" />{{rp|p=29}} They get their name from their appearance which resembles the walls of a [[Fortification|fort]]. Fortification agates are one the most common varieties, and they are what most people think of when they hear the word "agate".<ref name="lynch fortification">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=22–25}}</ref>
{{anchor|Lace agate}}''Lace agates'' exhibit a [[lace]]-like pattern of bands with many swirls, eyes, bends, and zigzags. Unlike most agates, they usually form in veins instead of nodules.<ref name="pabian" />{{rp|p=31}}
{{anchor|Faulted agate}}''Faulted agates'' have bands that were broken and slightly shifted by rock movement and then re-cemented together by chalcedony. They have the appearance of rock layers with [[Fault (geology)|fault lines]] running through them. ''Brecciated agates'' also have bands that were broken apart and re-cemented with chalcedony, but they consist of disjointed band fragments at random angles.<ref name="lynch brecciated">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=70–73}}</ref><ref name="pabian" />{{rp|pp=24,28}} They are a form of [[breccia]], which is a textural term for any rock composed of angular fragments.<ref name="lynch brecciated" /><ref>{{Cite web |title=Brecciated agate |url=https://www.mindat.org/min-7593.html |access-date=February 11, 2025 |website=Mindat.org |publisher=Hudson Institute of Mineralogy}}</ref>
{{anchor|Eye agate}}''Eye agates'' have one or more circular, concentric rings on their surface.<ref>{{Cite web |title=Eye Agate |url=https://www.mindat.org/min-7598.html |access-date=February 11, 2025 |website=Mindat.org |publisher=Hudson Institute of Mineralogy}}</ref> These "eyes" are actually [[Hemisphere (geometry)|hemispheres]] that form on the husk of the agate and extend inward like a bowl.<ref name="lynch eyes">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=82–85}}</ref>
{{anchor|Sagenitic agate}}''Sagenitic agates'', or ''sagenites'', have [[Acicular (crystal habit)|acicular]] (needle-shaped) inclusions of another mineral, usually [[anhydrite]], [[aragonite]], goethite, [[rutile]], or a [[zeolite]]. Chalcedony often forms tubes around these crystals and may eventually replace the original mineral, resulting in a [[pseudomorph]].<ref name="pabian" />{{rp|p=34}} The term "sagenite" was originally a name for a type of rutile, and later [[rutilated quartz]]. It has since been used to describe any quartz variety with acicular inclusions of any mineral.<ref>{{cite web |title=Sagenite |url=https://www.mindat.org/min-8578.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=16 February 2025}}</ref>
{{anchor|Tube agate}}''Tube agates'' contain tunnel-like structures that extend all the way through the agate.<ref name="lynch tubes">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=64–67}}</ref> These "tubes" may sometimes be banded or hollow, or both. Tube agates form when chalcedony grew around sagenitic inclusions embedded within the agate, forming [[Stalactite|stalactitic]] structures. Visible "eyes" can also appear on the surface of tube agates if a cut is made (or the agate is weathered) perpendicular to the stalactitic structure.<ref name="pabian" />{{rp|pp=27,35}}
{{anchor|Dendritic agate}}''Dendritic agates'' have dark-colored, fern-like patterns ([[Dendrite (crystal)|dendrites]]) that form on the surface or in the spaces between bands.<ref name="lynch dendritic">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=78–81}}</ref><ref name="pabian" />{{rp|p=25}} They are composed of manganese or iron oxides. ''Moss agates'' exhibit a [[moss]]-like pattern and are usually green or brown in color. They form when dendritic structures on the surface of an agate are pushed inward with the silica gel during their formation. Moss agate was once believed to be petrified moss, until it was discovered the moss-like formations are actually composed of celadonite, [[hornblende]], or a [[Chlorite group|chlorite]] mineral. ''Plume agates'' are a type of moss agate, but the dendritic "plumes" form tree-like structures within the agate. They are often bright red (from inclusions of [[hematite]]) or bright yellow (from inclusions of [[goethite]]).<ref name="pabian" />{{rp|pp=32–33}} While dendrites frequently occur in banded agates, moss and plume agates usually lack bands altogether. Therefore, they are not true agates according to the mineralogical definition.<ref name="mindat" /><ref>{{Cite web |last=Team |first=Geology In |title=Moss Agate: Formation, Occurrence, Uses |url=https://www.geologyin.com/2020/02/what-is-moss-agate.html#google_vignette |access-date=2025-02-11 |website=Geology In |language=en}}</ref>
{{anchor|Iris agate}}''Iris agates'' have bands that are fine enough that when thinly sliced, they cause white light to be [[Diffraction|diffracted]] into its [[spectrum|spectral]] colors. This "iris effect" usually occurs in colorless agates, but it can also occur in brightly colored ones.<ref name="pabian" />{{rp|p=30}}
<gallery mode="packed" heights="130px">
Agate Braziilia.jpg|Brazilian agate with classic fortification banding
Eyeballed by all the eye agates (27395607964).jpg|Tumbled Lake Superior eye agates
Detail, Dendritic agate (cropped).jpg|Dendritic agate from India
Four moss agate cabochons.jpg|Moss agate cabochons
Iris Agate from (Agatized Petrified Wood), Stinking Water, Oregon detail, from- Oregon004 (cropped).jpg|Iris agate from petrified wood
</gallery>
=== Level-banded agates ===
Agates with level banding are traditionally called ''[[onyx]]'', although the formal definition of the term onyx refers to color pattern, not the shape of the bands.<ref>{{cite web |title=Onyx |url=https://www.mindat.org/min-2999.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=February 9, 2025}}</ref> Accordingly, the name ''onyx'' is also used for wall-banded agates. Onyx is also frequently misused as a name for banded [[calcite]]. The name originates from the Greek word for the human nail, which has parallel ridges.<ref name="pabian">{{Cite book |last1=Pabian |first1=Roger |title=Agates: Treasures of the Earth |last2=Jackson |first2=Brian |last3=Tandy |first3=Peter |last4=Cromartie |first4=John |date=2016 |publisher=Firefly Books |isbn=978-1-77085-644-8}}</ref>{{rp|p=37}} Typically, onyx bands alternate between black and white or other light and dark colors. ''Sardonyx'' is a variety with red-to-brown bands alternated with either white or black bands.<ref>{{cite web |title=Sardonyx |url=https://www.mindat.org/min-7604.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date= February 10, 2025}}</ref>
[[Thunderegg|Thunder eggs]] are frequently level-banded, however they may also have wall banding. Level banding is also common in [[Lake Superior agate]]s.<ref name="lynch water-level">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6 |pages=34–37}}</ref>


<gallery mode="packed" heights="130px">
<gallery mode="packed" heights="130px">
Fossil agatized coral Florida.JPG|alt=A piece of translucent pink agatized coral, with a "ruffled" appearance along the top edge|Agatized coral
Onyx Mainzer Becken.jpg|Onyx agate
Dendritic agate.jpg|Dendritic agate
Thunder Egg Agate (Priday Blue Bed, John Day Formation, Miocene; near Madras, Oregon, USA) 5.jpg|Level-banded thunder egg from Oregon, USA
Elimia fossils Wyoming.jpg|alt=An irregular dark stone with a flat polished front; many white fragments of elongated, spiral, "corkscrew" shells seem to float in the dark stone|"Turritella agate" (''[[Elimia tenera]]'')
Crazy Lace Agate - Macro Panorama.jpg|Crazy lace agate
</gallery>
</gallery>


==Uses ==
== Regional varieties ==
[[File:-玛瑙兽首杯.jpg|thumb|Agate drinking horn, [[Tang dynasty]]]]
Agates are very common, and they have been found on every continent,<ref name="pabian" />{{rp|p=5}} including Antarctica.<ref name="Antarctica" /> In addition to the structural varieties detailed in the previous section, numerous geological, local, and trade names are used to describe agates from different localities.<ref name="pabian" />{{rp|pp=7–9}} Below is a table of agate varieties from different regions of the world.{{sticky header}}
{| class="wikitable sortable sticky-header" |
|+ Regional varieties of agate
|-
! Name !! Locality !! Region !! Description !! Type !! Geologic environment !! Age !! Photo(s) !! References
|-
| [[Blue lace agate]] || Chiefly Namibia || Africa || Pale blue and white lace agate || [[#Vein agate|Vein agate]] || Volcanic rock (dolomite associated with [[dolerite]]) || [[Jurassic]] period || [[File:Blue Lace Agate.jpg|130px]] Blue lace agate from Ysterputz Mine, Namibia || <ref name="pabian" />{{rp|pp=134–135}} <ref name="JAES">{{cite journal |last1=Welman-Purchase |first1=Megan |last2=Wicht |first2=Joanna |last3=Miller |first3=Duncan |last4=Roelofse |first4=Frederick |title=Blue lace agate and chalcedony pseudomorphs from Ysterputs in southern Namibia |journal=Journal of African Earth Sciences |date=April 2024 |volume=212 |article-number=105211 |doi=10.1016/j.jafrearsci.2024.105211 |bibcode=2024JAfES.21205211W |doi-access=free }}</ref>
|-
| {{anchor|Botswana agate}}Botswana agate || Botswana || Africa || Typically {{convert|2.5|–|5|cm|in|abbr=on}} in diameter, with contrasting bands of purple, pink, black, grey, and white || [[#Nodular agate|Nodular agate]] || Volcanic rock (Karoo Series, basalt) || [[Permian]] period || [[File:Agat - Bobonong, Botswana.jpg|130px]] Botswana agate || <ref name="pabian" />{{rp|pp=131–132}}
|-
| {{anchor|Malawi agate}}Malawi agate || Malawi || Africa || Typically bright red or orange with contrasting white bands, some are pink and blue || [[#Nodular agate|Nodular agate]] || Volcanic rock || Permian period || [[File:Malawi Agate (Malawi, southeastern Africa) (32734668126).jpg|130px]] Malawi agate || <ref name="pabian" />{{rp|p=134}}
|-
| (Unnamed agate) || [[Bellingshausen Station]], [[King George Island (South Shetland Islands)|King George Island]] || Antarctica || White and clear bands || [[#Nodular agate|Nodular agate]] || || || [[File:Agate (Tertiary; Agate Bay, King George Island, South Shetland Islands) 1.jpg|130px]] Agate from King George Island, Antarctica || <ref name="Antarctica">{{cite web |title=Collins Harbour, King George Island, South Shetland Islands, Antarctic Peninsula, Western Antarctica, Antarctica |url=https://www.mindat.org/loc-420174.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=16 February 2025}}</ref>
|-
| {{anchor|Queensland agate}}Queensland agate || [[Queensland]] || Australia || Often green or yellow-green (colors that are rarely found in other regions), frequently level-banded || [[#Nodular agate|Nodular agate]] || Volcanic rock (basaltic lava flows) || Late Permian period || [[File:Agat ze strefą krustalną - Agate Creek, Queensland, Australia.jpg|130px]] Queensland agate with level banding || <ref name="pabian" />{{rp|pp=144–145}}
|-
| German agate || Near Idar-Oberstein, Germany || Europe || Often red or pink, sometimes other colors || [[#Nodular agate|Nodular agate]] || Volcanic rock || Permian period || [[File:Agate-MCG 91225-P4150832-white.jpg|130px]] German agate from Idar-Oberstein || <ref name="pabian" />{{rp|pp=52–55}}
|-
| Scottish agate || [[Stonehaven]] to just south of [[Ayr]], near [[Oban]], and surrounding the [[Cheviot Hills]], Scotland, United Kingdom || Europe || Various colored bands || [[#Nodular agate|Nodular agate]] || Volcanic rock (andesite) || [[Early Devonian]] period || [[File:Agate detail, Scotland 007 (cropped).jpg|130px]] Close-up of a Scottish agate from [[Ayrshire]] || <ref name="pabian" />{{rp|pp=58–61}}
|-
| Small Isles agate || Islands off the west coast of Scotland, United Kingdom || Europe || Various colored bands || [[#Nodular agate|Nodular agate]] || Volcanic rock (basalt) || [[Tertiary (period)|Tertiary]] period || {{Image requested inline}} || <ref name="pabian" />{{rp|pp=58–61}}
|-
| Potato stone (Pot stone) || [[Bristol]] and [[Somerset]], England, United Kingdom || Europe || Irregularly-shaped, reddish, banded agate nodules, typically surrounding a hollow cavity lined with macroscopic quartz, but sometimes completely filled || [[#Nodular agate|Nodular agate]] || Sedimentary rock (dolomitic [[Conglomerate (geology)|conglomerate]] and [[marl]]) || [[Triassic]] period || [[File:Quartz-agate (12250382174).jpg|130px]] Potato stone from England || <ref name="pabian" />{{rp|pp=72}}
|-
| Blue Bed (Pony Butte) thunder egg || Richardson Ranch (formerly Priday Ranch), northeast of [[Madras, Oregon]], United States || North America || Blue and white banding with dark brown shell, frequently level-banded || [[#Nodular agate|Nodular agate]] ([[thunder egg]]) || Volcanic rock (John Day Formation, [[Rhyolite|rhyolitic]] volcanic ash) || [[Miocene]] epoch || [[File:Thunder Egg Agate (Priday Blue Bed, John Day Formation, Miocene; near Madras, Oregon, USA) 3 (33992544563).jpg|130px]] Blue Bed thunder egg from near Madras, Oregon || <ref name="pabian" />{{rp|p=99}}
|-
| {{anchor|Boley agate}}Boley agate || Central [[Oklahoma]], United States || North America || White fortification and eye banding with clasts of brecciated chert || [[#Vein agate|Vein agate]] || Sedimentary rock (Boley conglomerate layer, Vamoosa formation) || [[Virgilian series]] || {{Image requested inline}} || <ref>{{cite journal |last1=Suneson |first1=Neil H. |last2=Lyon |first2=William G. |last3=Goza |first3=David |title=Boley Agate — Chert Breccia Clasts In The Vamoosa Formation |journal=Shale Shaker |date=July–August 2013 |volume=64 |issue=1 |pages=22–37 |url=http://www.ogs.ou.edu/geology/pdf/BOLEYAGATEnhs.pdf |access-date=27 July 2025}}</ref>
|-
| {{anchor|Coldwater agate}}Coldwater agate (Lake Michigan cloud agate) || Great Lakes Region, United States|| North America || Banded lines of grey and white chalcedony || [[#Nodular agate|Nodular agate]] || Sedimentary rock (marine limestone and dolomite) || || {{Image requested inline}} || <ref>{{Cite book|last=Garvin|first=Paul|url=https://books.google.com/books?id=3a1XkpBGdAcC&q=Coldwater+agates&pg=PA65|title=Iowa's Minerals: Their Occurrence, Origins, Industries, and Lore|date=2010-09-13|publisher=University of Iowa Press|isbn=978-1-60938-014-4|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164756/https://books.google.com/books?id=3a1XkpBGdAcC&q=Coldwater+agates&pg=PA65|url-status=live}}</ref>
|-
| {{anchor|Crazy lace agate}}Crazy lace agate || Mexico || North America || Brightly colored lace agate, typically white and red, sometimes yellow and grey || [[#Vein agate|Vein agate]] || Sedimentary rock || Late [[Cretaceous]] period || [[File:Crazy Lace Agate - Macro Panorama.jpg|130px]] Crazy lace agate || <ref>{{Cite book|last1=Atkinson|first1=Bill|url=https://books.google.com/books?id=ZSP94tREw7AC&q=Crazy+lace+agate&pg=PA165|title=Within the Stone: Photography|last2=Ackerman|first2=Diane|date=2004|publisher=BrownTrout Publishers|isbn=978-0-7631-8189-5|language=en|access-date=2020-10-29|archive-date=2023-08-26|archive-url=https://web.archive.org/web/20230826164751/https://books.google.com/books?id=ZSP94tREw7AC&q=Crazy+lace+agate&pg=PA165|url-status=live}}</ref><ref name="pabian" />{{rp|p=121}}
|-
| {{anchor|Crowley's Ridge agate}}Crowley's Ridge agate || [[Crowley's Ridge]], Arkansas and Missouri, United States || North America || Pale yellow to tan fortification banding, rarely pink to red (purportedly due to heating in wildfires). Also found along the Mississippi River basin in Mississippi and Louisiana. || [[#Nodular agate|Nodular agate]] || Sedimentary rock || [[Paleozoic]] era (deposited in [[Pliocene]] gravel) || || <ref>{{cite web |title=Crowley's Ridge Agates |url=https://www.sailorenergy.net/Agates/AgatesArkansasCrowleysRidge01.html |website=Dwarves' Earth Treasures |access-date=17 February 2026}}</ref><ref>{{cite web |title=Agate from Crowley's Ridge (Crowleys Ridge), Malden, Dunklin County, Missouri, USA |url=https://www.mindat.org/locentry-1499833.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=17 February 2026}}</ref><ref>{{cite web |last1=Guccione |first1=M. J. |last2=Prior |first2=W. L. |last3=Rutledge |first3=E. M. |title=The Tertiary and Quaternary Geology of Crowley's Ridge: A Guidebook |url=https://www.geology.arkansas.gov/publication/guide_books/GB-86-4-guidebook.html |website=Office of the State Geologist |publisher=Arkansas Geological Commission |access-date=17 February 2026 |date=1986}}</ref>
|-
| {{anchor|Dugway geode}}Dugway geode || [[Utah]], United States || North America || Light grey to blue, often contain hollow cavities lined with drusy quartz || [[#Nodular agate|Nodular agate]] ([[Thunderegg|thunder egg]]) || || || [[File:Dugway Geode (Juab County, Utah, USA) 2 (34581522545).jpg|130px]] Dugway geode from Utah || <ref name="pabian" />{{rp|p=92}}
|-
| [[Fairburn agate]] || [[South Dakota]] and [[Nebraska]], United States || North America || Red fortification banding || [[#Nodular agate|Nodular agate]] || Sedimentary rock (marine carbonate sediments) || [[Pennsylvanian (geology)|Pennsylvanian]] period || [[File:Fairburn Agate (ultimately derived from the Minnelusa Formation, Pennsylvanian-Permian; collected east of the Black Hills, western South Dakota, USA) 26 (32406082220).jpg|130px]] Fairburn agate from western South Dakota || <ref>{{cite web |title=Fairburn Agate |url=https://www.mindat.org/min-1441.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=16 February 2025}}</ref><ref name="pabian" />{{rp|p=77}}
|-
| {{anchor|Holley blue agate|Holly blue agate}}Holley (Holly) blue agate || Near [[Holley, Oregon]] || North America || Lavender to blue || [[#Nodular agate|Nodular agate]] || || || [[File:Holley Blue Agate (Linn County, Oregon, USA) 9.jpg|130px]] Holley blue agate from Oregon || <ref name="pabian" />{{rp|p=103}}
|-
| {{anchor|Laguna agate}}Laguna agate || Ojo Laguna, [[Chihuahua (state)|Chihuahua]], Mexico || North America || Vibrant bands in shades of red, orange, pink, or purple, often exhibit parallax or shadow banding, inclusions common || [[#Nodular agate|Nodular agate]] || Volcanic rock (andesite) || [[Tertiary period|Tertiary]] period || [[File:LagunaAgateFromMexico.jpg|130px]] Laguna agate || <ref>{{Cite web |title=Laguna Agate |url=https://www.mindat.org/min-7611.html |access-date=2025-02-16 |website=www.mindat.org}}</ref><ref name="pabian" />{{rp|pp=114–115}}
|-
| [[Lake Superior agate]] || Near [[Lake Superior]], United States and Canada || North America || Bands in shades of red, orange, yellow, brown, white, and grey, level banding and various structural features common || [[#Nodular agate|Nodular agate]] || Volcanic rock (basalt) || Late [[Precambrian]] (can be found in [[Pleistocene]] glacial deposits) || [[File:Agate nodule ("Lake Superior Agate") (floor of Lake Superior, offshore Keweenaw Peninsula, Michigan USA) 2 (33741645898).jpg|130px]] Rough Lake Superior agate from [[Keweenaw Peninsula]], Michigan || <ref>{{cite web |title=Lake Superior Agate |url=https://www.mindat.org/min-9253.html |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=16 February 2025}}</ref><ref name="lynch whole book">{{Cite book |last1=Lynch |first1=Dan R. |title=Lake Superior Agates Field Guide |last2=Lynch |first2=Bob |date=2012 |publisher=Adventure Publications |isbn=978-1-59193-282-6}}</ref><ref name="pabian" />{{rp|pp=83–84}}
|-
| {{anchor|Lysite agate}}Lysite agate || Lysite Mountain, [[Fremont County, Wyoming]], United States || North America || Colorful bands with plumes and moss || [[#Vein agate|Vein agate]] || Sedimentary rock (marine origin) || || [[File:Lysite Agate Wyoming.jpg|130px]] Lysite agate from Wyoming || <ref name="pabian" />{{rp|p=79}}
|-
| {{anchor|Sweetwater agate}}Sweetwater agate || Near [[Sweetwater River (Wyoming)|Sweetwater River]], [[Wyoming]] || North America || Small moss agates with brown or black dendrites, fluorescent under [[Ultraviolet|UV]] light || [[#Nodular agate|Nodular agate]] || Sedimentary rock (sandstone) || Miocene epoch || {{Image requested inline}} || <ref name="pabian" />{{rp|p=79}}
|-
| [[Elimia tenera|Turritella agate]] || Wyoming || North America || Brown fossil agate with the elongated spiral shells of an extinct freshwater snail (Elimia tenera) || [[#Fossil agate|Fossil agate]] || Sedimentary rock ([[Green River Formation]]) || [[Eocene]] epoch || [[File:Elimia fossils Wyoming.jpg|130px]] Turritella agate (''Elimia tenera'') || <ref name="turritella">{{Cite web |last=King |first=Hobart M. |title=Turritella Agate |url=https://geology.com/gemstones/turritella/ |access-date=16 February 2025 |website=geology.com}}</ref>
|-
| {{anchor|Brazilian agate}}Brazilian agate || [[Rio Grande do Sul]] and other southeastern states, Brazil || South America || Often large, up to {{convert|0.9|m|ft|abbr=on}} in diameter and over {{convert|120|kg|lb|abbr=on}}, commonly pale yellow, gray, or colorless (usually sold artificially dyed), are more colorful or contain structural features || [[#Nodular agate|Nodular agate]] || Volcanic rock (decomposed volcanic ash and basalt) || Late Permian period || [[File:Brazilian agate section (detail).JPG|130px]] Natural Brazilian agate <br><br> [[File:5agat, Brazylia.jpg|130px]] Dyed Brazilian agate || <ref name="pabian" />{{rp|pp=122–126}}
|-
| [[Condor agate]] || [[Mendoza Province|Mendoza]], Argentina || South America || Bright red and yellow fortification banding, may contain mossy or sagenitic inclusions || [[#Nodular agate|Nodular agate]] || || || [[File:Argentina001.jpg|130px]] Condor agate || <ref name="pabian" />{{rp|pp=129–131}}
|-
| {{anchor|Crater agate}}Crater agate || [[Patagonia]], Argentina || South America || Typically hollow, black with red bands near the center || [[#Nodular agate|Nodular agate]] || Volcanic rock (rhyolite) || [[Jurassic]] period || {{Image requested inline}} || <ref name="pabian" />{{rp|p=131}}
|-
| {{anchor|Puma agate}}Puma agate || [[Andes]], Patagonia, Argentina || South America || Agatized coral || [[#Fossil agate|Fossil agate]] || Sedimentary rock (marine) || || {{Image requested inline}} || <ref name="pabian" />{{rp|p=131}}
|}


Agate is one of the most common materials used in the art of [[hardstone carving]], and has been recovered at a number of ancient sites, indicating its widespread use in the ancient world; for example, archaeological recovery at the [[Knossos]] site on [[Crete]] illustrates its role in [[Bronze Age]] [[Minoan civilization|Minoan]] culture.<ref>C. Michael Hogan. 2007. [http://www.themodernantiquarian.com/site/10854/knossos.html#fieldnotes ''Knossos fieldnotes'', Modern Antiquarian] {{Webarchive|url=https://web.archive.org/web/20180711201424/http://www.themodernantiquarian.com/site/10854/knossos.html#fieldnotes |date=2018-07-11 }}</ref>  It has also been used for centuries for [[leather burnishing]] tools.
== Uses ==
Agate is frequently used as a gemstone in [[jewelry]] such as [[pins]], [[brooch]]es, [[necklaces]], [[earrings]], and [[bracelets]]. Agates have also historically been used in the art of [[hardstone carving]] to make knives, [[inkstand]]s, [[seal (emblem)|seals]], [[marbles]], and other objects. Today, they are widely used to make beads, decorative displays, carvings, and [[cabochons]], as well as face-polished and tumble-polished specimens of varying size and origin. Agate collecting is a popular hobby, and agate specimens can be found in numerous gift shops, museums, galleries, and private collections.<ref name="pabian" />{{rp|pp=159–168}}


The decorative arts use it to make ornaments such as [[pins]], [[brooch]]es or other types of [[jewellery]], paper knives, [[inkstand]]s, [[marbles]] and [[seal (emblem)|seals]]. Agate is also still used today for decorative displays, cabochons, beads, carvings and [[Intarsia]] art as well as face-polished and tumble-polished specimens of varying size and origin. [[Idar-Oberstein]] was one of the centers which made use of agate on an industrial scale. Where in the beginning locally found agates were used to make all types of objects for the European market, this became a globalized business around the turn of the 20th century: Idar-Oberstein imported large quantities of agate from Brazil, as ship's ballast. Making use of a variety of proprietary chemical processes, they produced colored beads that were sold around the globe.<ref>{{Cite web |url=http://www.farlang.com/art/2007-04-15.7721093142 |title=Background Article on Idar Oberstein |access-date=2008-11-27 |archive-date=2008-12-23 |archive-url=https://web.archive.org/web/20081223064824/http://www.farlang.com/art/2007-04-15.7721093142 |url-status=live }}</ref> Agates have long been used in arts and crafts. The sanctuary of a Presbyterian church in [[Yachats, Oregon]], has six windows with panes made of agates collected from the local beaches.<ref>{{cite web|url=http://www.yachatspresbyterian.org/webapp/GetPage?pid=211|title=Agate Windows - Community Presbyterian Church|access-date=19 September 2014|archive-url=https://web.archive.org/web/20120301204921/http://www.yachatspresbyterian.org/webapp/GetPage?pid=211|archive-date=1 March 2012|url-status=dead}}</ref>
Industrial uses of agate exploit its hardness, ability to retain a highly polished surface finish and resistance to chemical attack. Historically, it was used to make bearings for highly accurate [[laboratory balance]]s and [[Mortar and pestle|mortars and pestles]] to crush and mix chemicals. During the [[Second World War]], black agate beads mined from [[Queensland]], Australia were used in the turn and bank indicators of military aircraft.<ref name="pabian" />{{rp|pp=168–169}}


Industrial uses of agate exploit its hardness, ability to retain a highly polished surface finish and resistance to chemical attack. It has traditionally been used to make knife-edge bearings for [[laboratory balance]]s and precision pendulums, and sometimes to make [[Mortar and pestle|mortars and pestles]] to crush and mix chemicals.
Agates, particularly moss agates, were first used during the [[Stone Age]] to make tools such as arrow and spear points, needles, and hide scrapers. Artifacts from as early as 7000 BCE have been found in Mongolia, and the [[Natufian]] people of the [[Levant]] are known to have made knives and arrowheads from moss agate as early as 10000 BCE. Agate jewelry from [[Sumeria]] has been dated to c. 2500 BCE, and the [[Ancient Egyptians]], [[Mycenaeans]], and [[Ancient Rome|Romans]] all used agate in their jewelry.<ref name="pabian" />{{rp|pp=159–163}} Archaeological recovery at the [[Knossos]] site on [[Crete]] illustrates the role of agates in [[Bronze Age]] [[Minoan civilization|Minoan]] culture.<ref>C. Michael Hogan. 2007. [http://www.themodernantiquarian.com/site/10854/knossos.html#fieldnotes ''Knossos fieldnotes'', Modern Antiquarian] {{Webarchive|url=https://web.archive.org/web/20180711201424/http://www.themodernantiquarian.com/site/10854/knossos.html#fieldnotes |date=2018-07-11 }}</ref> The ornamental use of agate was common in [[ancient Greece]], in assorted jewelry and in the [[seal stone]]s of Greek warriors.<ref>{{cite magazine |date=7 November 2017 |title=Masterpiece of Greek Art Found in the Griffin Warrior Tomb |url=https://smithsonianmag.com/smart-news/masterpiece-greek-art-found-griffin-warrior-tomb-180967141 |magazine=[[Smithsonian (magazine)|Smithsonian]] |publisher=[[Smithsonian Institution]]}}</ref>


<gallery>
Idar-Oberstein was a historically important location in Germany that made use of agate on an industrial scale, dating back to c. 1375 CE.<ref name="pabian" />{{rp|p=52}} Originally, locally found agates were used to make all types of objects for the European market, but it became a globalized business around the turn of the 20th century. Idar-Oberstein began to import large quantities of agate from Brazil, as ship's ballast. Making use of a variety of proprietary chemical processes, they produced colored beads that were sold around the globe.<ref>{{Cite web |url=http://www.farlang.com/art/2007-04-15.7721093142 |title=Background Article on Idar Oberstein |access-date=2008-11-27 |archive-date=2008-12-23 |archive-url=https://web.archive.org/web/20081223064824/http://www.farlang.com/art/2007-04-15.7721093142 |url-status=live }}</ref>
Tumbled agate and jasper.jpg|A {{convert|15|lb|kg|abbr=on|order=flip}} barrel full of tumble-polished agate and [[jasper]]
 
<gallery mode="packed" heights="130px">
File:Tumbled agate and jasper.jpg|A {{convert|15|lb|kg|abbr=on|order=flip}} barrel full of tumble-polished agate and [[jasper]]
File:Zegelring in goud met intaglio met portret van Commodus in nicolo, 180 tot 200 NC, vindplaats- Tongeren, de Schaetzengaarde 22, 1998, losse vondst (mogelijk goudschat), collectie Gallo-Romeins Museum Tongeren, GRM 1892.jpg|Gold Roman signet ring with portrait of emperor [[Commodus]] in niccolo agate, 180-200 CE, found in Tongeren, [[Gallo-Roman Museum, Tongeren|Gallo-Roman Museum (Tongeren)]]
File:Zegelring in goud met intaglio met portret van Commodus in nicolo, 180 tot 200 NC, vindplaats- Tongeren, de Schaetzengaarde 22, 1998, losse vondst (mogelijk goudschat), collectie Gallo-Romeins Museum Tongeren, GRM 1892.jpg|Gold Roman signet ring with portrait of emperor [[Commodus]] in niccolo agate, 180-200 CE, found in Tongeren, [[Gallo-Roman Museum, Tongeren|Gallo-Roman Museum (Tongeren)]]
Byzantine - The "Rubens Vase" - Walters 42562.jpg|The "Rubens Vase" ([[Byzantine Empire]]). Carved in high relief from a single piece of agate, most likely created in an imperial workshop for a Byzantine emperor.
File:Byzantine - The "Rubens Vase" - Walters 42562.jpg|The "[[Rubens Vase]]" ([[Byzantine Empire]]). Carved in high relief from a single piece of agate, most likely created in an imperial workshop for a Byzantine emperor.
Victorian banded agate ear rings.jpg|Victorian banded agate earrings
File:Victorian banded agate ear rings.jpg|Victorian banded agate earrings
File:唐-玛瑙兽首杯.jpg|Agate [[drinking horn]], [[Tang dynasty]]
</gallery>
</gallery>


==Health impact==
== Treatment and processing ==
Respiratory diseases such as [[silicosis]], and a higher [[Cumulative incidence|incidence]] of [[tuberculosis]] among workers involved in the agate industry, have been studied in [[India]] and China.<ref>{{cite journal |last1=Chaudhury |first1=Nayanjeet |last2=Phatak |first2=Ajay |last3=Paliwal |first3=Rajiv |title=Co-morbidities among silicotics at Shakarpur: A follow up study |journal=Lung India |volume=29 |issue=1 |pages=6–10 |doi=10.4103/0970-2113.92348 |pmc=3276038 |pmid=22345906 |date=January 2012}}</ref><ref>{{cite journal |last1=Jiang |first1=CQ |last2=Xiao |first2=LW |last3=Lam |first3=TH |last4=Xie |first4=NW |last5=Zhu |first5=CQ |title=Accelerated silicosis in workers exposed to agate dust in Guangzhou, China. |journal=American Journal of Industrial Medicine |date=July 2001 |volume=40 |issue=1 |pages=87–91 |pmid=11439400 |doi=10.1002/ajim.1074}}</ref><ref>{{cite journal |last1=Tiwari |first1=RR |last2=Narain |first2=R |last3=Sharma |first3=YK |last4=Kumar |first4=S |title=Comparison of respiratory morbidity between present and ex-workers of quartz crushing units: Healthy workers' effect |journal=Indian Journal of Occupational and Environmental Medicine |date=September 2010 |volume=14 |issue=3 |pages=87–90 |pmid=21461160 |doi=10.4103/0019-5278.75695 |pmc=3062020}}</ref>
[[File:Agate, physical properties and origin (Plate VII) BHL48235765.jpg|thumb|Composite image of an agate slice showing natural color at the top and various artificial colors below]]
Many pale or dull agates are artificially treated to enhance their colors and make them more appealing to consumers. Chalcedony is one of the earliest stones to be artificially enhanced,<ref name="russell">{{cite web |last1=Russell |first1=Daniel |title=Historic Methods of Artificially Coloring Agates |url=https://www.mindat.org/article.php/170/Historic+Methods+of+Artificially+Coloring+Agates |website=mindat.org |publisher=Hudson Institute of Mineralogy |access-date=8 September 2025 |date=13 January 2008}}</ref> with heating having been used for centuries to produce the rich red color of carnelian.<ref name="treated gem">{{cite web |title=treated gem |url=https://www.britannica.com/art/treated-gem |website=Encyclopedia Britannica |access-date=8 September 2025 |date=6 November 2016}}</ref> Many varieties of chalcedony, including agate, are relatively porous and absorb [[dye]]s well.<ref name="russell" /><ref name="treated gem" /> The classical methods<ref name="color loss">{{cite journal |last1=de Almeida Silva |first1=Rodrigo |last2=Petter |first2=Carlos Otavio |last3=Schneider |first3=Ivo André H. |title=Avaliação da perda da coloração artificial de ágatas |journal=Rem: Revista Escola de Minas |date=September 2007 |volume=60 |issue=3 |pages=477–482 |doi=10.1590/S0370-44672007000300007 |url=https://www.scielo.br/j/rem/a/ZmDd64KZTchSBcfXtGKPxvm|hdl=10183/10181 |hdl-access=free }}</ref> of staining agates were developed in the early 19th century in Idar-Oberstein, Germany. After the agates were cut and cleaned, they were soaked for several days in a particular inorganic dye or sugar solution depending on the desired color to be achieved. This was often followed by an acid bath and/or heating ("burning") to [[oxidize]] the compounds:<ref name="russell" />
 
* Blue agates were produced by using a solution of [[potassium ferricyanide]] or [[Potassium ferrocyanide|ferrocyanide]] followed by [[iron sulfate]], which forms [[Prussian blue|iron ferricyanide (Prussian blue)]].<ref name="russell" />
* Red agates were produced either by burning alone, or if not enough natural iron was present in the stones, by first soaking them in a solution of [[iron nitrate]] and then burning them to form [[iron oxide]].<ref name="russell" />
* Green agates were produced using solutions of [[nickel]] or [[chromium]] [[Salt (chemistry)|salts]] followed by burning.<ref name="russell" />
* Black agates were produced by soaking the stones in a sugar solution and then immersing them in [[sulfuric acid]] to carbonize the sugars;<ref name="russell" /> brown agates can also be produced using a similar method.<ref name="treated gem" />
* Yellow agates can be produced using hydrochloric acid followed by burning.<ref name="treated gem" />
 
Organic [[aniline]] dyes derived from [[coal tar]] began to be used later in the 19th century,<ref name="russell" /> which allowed for the production of agates of additional colors such as pink and purple. While the colors produced by the classical methods are typically permanent, the colors produced by organic dyes can fade with exposure to light or heat.<ref name="color loss" /> Organic dyes can also only penetrate a short distance into the agate from the exposed surfaces. The practice of artificially treating agates remains popular today, and dyed Brazilian agates in particular are very common on the global market.<ref name="pabian" />{{rp|p=157}}
 
Larger agates are often cut into halves or slices with circular diamond saws. They can then be polished with lapidary grinding, sanding, and polishing wheels of successively greater grit sizes.<ref name="pabian" />{{rp|pp=151–155}} Smaller agates and crushed agate fragments can alternatively be polished using [[Tumble finishing|rock tumblers]] or vibratory polishers. This equipment can generate large quantities of silica dust. Respiratory diseases such as [[silicosis]], and a higher [[Cumulative incidence|incidence]] of [[tuberculosis]] among workers involved in the agate industry, have been studied in India and China.<ref>{{cite journal |last1=Chaudhury |first1=Nayanjeet |last2=Phatak |first2=Ajay |last3=Paliwal |first3=Rajiv |title=Co-morbidities among silicotics at Shakarpur: A follow up study |journal=Lung India |volume=29 |issue=1 |pages=6–10 |doi=10.4103/0970-2113.92348 |pmc=3276038 |pmid=22345906 |date=January 2012 |doi-access=free }}</ref><ref>{{cite journal |last1=Jiang |first1=CQ |last2=Xiao |first2=LW |last3=Lam |first3=TH |last4=Xie |first4=NW |last5=Zhu |first5=CQ |title=Accelerated silicosis in workers exposed to agate dust in Guangzhou, China. |journal=American Journal of Industrial Medicine |date=July 2001 |volume=40 |issue=1 |pages=87–91 |pmid=11439400 |doi=10.1002/ajim.1074}}</ref><ref>{{cite journal |last1=Tiwari |first1=RR |last2=Narain |first2=R |last3=Sharma |first3=YK |last4=Kumar |first4=S |title=Comparison of respiratory morbidity between present and ex-workers of quartz crushing units: Healthy workers' effect |journal=Indian Journal of Occupational and Environmental Medicine |date=September 2010 |volume=14 |issue=3 |pages=87–90 |pmid=21461160 |doi=10.4103/0019-5278.75695 |pmc=3062020 |doi-access=free }}</ref>


==See also==
==See also==
{{Portal|Geology|Earth sciences|Minerals}}
{{Portal|Geology|Earth sciences|Minerals}}
{{Div col|colwidth=20em}}
* [[Amber]]
* [[Amethyst]]
* [[Aqeeq]]
* [[Aquamarine (gem)|Aquamarine]]
* [[Citrine quartz|Citrine]]
* [[Diamond]]
* [[Emerald]]
* [[Garnet]]
* [[Geode]]
* [[Kyanite]]
* [[Labradorite]]
* {{annotated link|List of minerals}}
* {{annotated link|List of minerals}}
* [[Lithophysa]]
{{clear}}
* [[Moonstone (gemstone)|Moonstone]]
* [[Opal]]
* [[Peridot]]
* [[Rose Quartz]]
* [[Swiss Blue Topaz]]
* [[Thunderegg]]
* [[Tiger's Eye]]
* [[Topaz]]
* [[Tourmaline]]
{{Div col end}}


== Citations ==
== References ==
{{Reflist}}
{{Reflist}}
== General and cited references ==
* Cross, Brad L. and Zeitner, June Culp. ''Geodes: Nature's Treasures''. Bardwin Park, Calif.: Gem Guides Book Co. 2005.
* Hart, Gilbert [http://www.minsocam.org/MSA/collectors_corner/arc/silicanom.htm "The Nomenclature of Silica"], ''American Mineralogist'', Volume 12, pages 383–395, 1927
* International Colored Gemstone Association, [https://web.archive.org/web/20101006064701/http://gemstone.org/gem-by-gem/english/agate.html "Agate: banded beauty"]
* [http://www.mindat.org/min-51.html "Agate"], Mindat.org, Hudson Institute of Mineralogy
* Moxon, Terry. ''Agate: Microstructure and Possible Origin''. Doncaster, S. Yorks, UK: Terra Publications, 1996.
* Pabian, Roger, et al. ''Agates: Treasures of the Earth''. Buffalo, New York: Firefly Books, 2006.
* Schumann, Walter. ''Gemstones of the World''. 3rd edition. New York: Sterling, 2006.


==External links==
==External links==
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[[Category:Agates| ]]
[[Category:Agates| ]]
[[Category:Gemstones]]
[[Category:Hardstone carving]]
[[Category:Hardstone carving]]
[[Category:Silicate minerals]]
[[Category:Symbols of Florida]]
[[Category:Symbols of South Dakota]]
[[Category:Provincial symbols of Nova Scotia]]

Latest revision as of 18:03, 22 February 2026


Agate
Polished agate nodule from Malawi, Africa
General
CategoryTectosilicate minerals
Formula
(repeating unit)
SiO2 (silicon dioxide)
Crystal systemTrigonal (quartz) or monoclinic (moganite)
Identification
ColorOften multicolored; commonly colorless, pale blue to black, red to orange, yellow, white, brown, pink, purple; rarely green
Crystal habitCryptocrystalline silica
CleavageNone
FractureConchoidal
TenacityBrittle
Mohs scale hardness6.5–7
LusterWaxy, vitreous when polished
StreakWhite
DiaphaneityTransparent to opaque (usually translucent)
Specific gravity2.60–2.64
Density2.6 g/cm3
Optical propertiesUniaxial (+)
Refractive index1.530-1.543
BirefringenceUp to 0.004
PleochroismAbsent
DispersionNone
References[1][2][3]

Agate (/ˈæɡɪt/ AG-it) is a variously translucent, banded variety of chalcedony. Agate stones are characterized by alternating bands of different colored chalcedony and may also include visible quartz crystals. They are common in nature and can be found globally in a large number of different varieties. There are some varieties of chalcedony without bands that are commonly called agate (moss agate, fire agate, etc.); however, these are not true agates. Moreover, not every banded chalcedony is an agate; for example, banded chert forms via different processes and is opaque. Agates primarily form as nodules within volcanic rock, but they can also form in veins or silicified fossils. Agate has been popular as a gemstone in jewelry for thousands of years, and today it is also popular as a collector's stone. Some duller agates sold commercially are artificially treated to enhance their color.

Etymology[edit | edit source]

Agate was given its name by Theophrastus, a Greek philosopher and naturalist. He discovered the stone c. 350 BCE along the shoreline of the River Achates (Script error: The function "langx" does not exist.), now the Dirillo River, on the Italian island of Sicily, which at the time was a Greek territory.[4]:

Composition[edit | edit source]

Agate is composed principally of chalcedony,[1] a microscopic (microcrystalline) and submicroscopic (cryptocrystalline) form of quartz that grows in fibers. The chemical composition of quartz is SiO
2
, also known as silica. Normally, between 1% and 20% of the "quartz" in chalcedony is actually moganite, a quartz polymorph.[5] Unlike macroscopic (macrocrystalline) quartz, which is anhydrous, chalcedony normally contains very small amounts of water bound to its crystal structure.[5][4]:

Agate contains multiple layers, or bands, of chalcedony fibers.[1] The fibers are twisted,[6][4]: forming a helical shape.[7] There are two different types of chalcedony fibers: length-slow (also known as quartzine) and length-fast. Agate primarily contains length-fast chalcedony fibers, consisting of crystals stacked perpendicular to the c-axis (side to side). Some intergrown quartzine may also be present, consisting of quartz crystals stacked parallel to the c-axis (tip to tip).[5]

Agate can sometimes contain small amounts of opal, an amorphous, hydrated form of silica.[4]: Agates also frequently contain macrocrystalline quartz, particularly in the center.[8][4]:

Formation[edit | edit source]

Agate geode

Geologists generally understand the early stages of agate formation, but the specific processes that result in band development are widely debated. Since they form in cavities within host rock, agate formation cannot be directly observed,[8] and agate banding has never been successfully replicated in the lab.[7][9]

Agates are most commonly found as nodules within the cavities of volcanic rocks[10] such as basalt, andesite, and rhyolite. These cavities, called vesicles (amygdaloids when filled),[4]: are gas bubbles that were trapped inside the lava when it cooled.[10][8][4]: The vesicles are later filled with hot, silica-rich water from the surrounding environment, forming a silica gel. This gel crystallizes through a complex process to form agates.[4]: Since agates usually form in lavas poor in free silica, there are multiple theories of where the silica originates from, including micro-shards of silica glass from volcanic ash or tuff deposits and decomposing plant or animal matter.[4]: Agates are much harder than the rocks they form in; some varieties (e.g. Lake Superior agates) are frequently found detached from their host rock.[4]:

In wall-banded agates, chalcedony fibers grow radially from the vesicle walls inward, perpendicular to the direction of the bands.[1][11] The vesicle walls are often coated with thin layers of celadonite or chlorite,[8][4]: soft, green phyllosilicate minerals that form from the reaction of hot, silica-rich water with the rock.[8] This coating provides a rough surface for the chalcedony fibers to form on, initially as radial spherulites. The rough surface also causes agate husks to have a pitted appearance once the coating has been weathered away or removed.[4]: Sometimes, the spherulites grow around mineral inclusions, resulting in eyes, tubes, and sagenitic agates.[1]

The first layer of spherulitic chalcedony is typically clear, followed by successive growth bands of chalcedony alternated with chemically precipitated color bands, primarily iron oxides.[4]: The center is often macrocrystalline quartz,[8] which can also occur in bands and possibly forms when there is not enough chemically bound water in the silica gel to promote chalcedony polymerization.[4]: When the silica concentration of the gel is too low, a hollow center forms, called an agate geode. In geodes, quartz forms crystals around the cavity, with the apex of each crystal pointing towards the center. Occasionally, quartz in agates may be colored, occurring in varieties such as amethyst or smoky quartz.[4]:

Level-banded agates form when chalcedony precipitates out of solution in the direction of gravity, resulting in horizontal layers of microscopic chalcedony spherulites.[1] Level banding commonly occurs together with wall banding, often forming at the base of the vesicle or in the center when the gel stops adhering to the vesicle walls. This is probably due to a decrease in bound water in the gel. Level-banded agate is less dense and less compact than wall-banded agate, as it is less fibrous and more granular.[4]:

Enhydro agates, or enhydros, form when liquid water becomes trapped within an agate (or chalcedony) nodule or geode, often long after its formation.[12][13]

Agates can also form within rock fissures, called veins.[4]: Vein agates form in a manner similar to nodular agates (see above),[4]: and they include lace agates such as blue lace agate and crazy lace agate. Veins may form in either volcanic rock or sedimentary rock.[4]:

Less commonly, agates can form as nodules within sedimentary rocks such as limestone, dolomite or tuff. These agates form when silica replaces another mineral, or silica-rich water fills cavities left by decomposed plant or animal matter.[4]: Sedimentary agates also include fossil agates, which form when silica replaces the original composition of an organic material.[14] This process is called silicification, a form of petrification. Examples include petrified wood,[15] agatized coral,[16] and Turritella agate (Elimia tenera).[17] Although these fossils are often referred to as being "agatized", they are only true agates if they contain bands.[1]

Structural varieties[edit | edit source]

Agates are broadly separated into two categories based on the type of banding they exhibit.[18][4]: Wall banding, also called concentric banding or adhesional banding, occurs when agate bands follow the shape of the cavity they formed in. Level banding, also called water-level banding, gravitational banding, horizontal banding, parallel banding, or Uruguay-type banding, occurs when agate bands form in straight, parallel lines. Level banding is less common and usually occurs together with wall banding.[1]

Agate exhibiting wall banding (top) and level banding (bottom)

Wall-banded agates[edit | edit source]

Fortification agates are any wall-banded agates with tight, well-defined bands.[4]: They get their name from their appearance which resembles the walls of a fort. Fortification agates are one the most common varieties, and they are what most people think of when they hear the word "agate".[19]

Lace agates exhibit a lace-like pattern of bands with many swirls, eyes, bends, and zigzags. Unlike most agates, they usually form in veins instead of nodules.[4]:

Faulted agates have bands that were broken and slightly shifted by rock movement and then re-cemented together by chalcedony. They have the appearance of rock layers with fault lines running through them. Brecciated agates also have bands that were broken apart and re-cemented with chalcedony, but they consist of disjointed band fragments at random angles.[20][4]: They are a form of breccia, which is a textural term for any rock composed of angular fragments.[20][21]

Eye agates have one or more circular, concentric rings on their surface.[22] These "eyes" are actually hemispheres that form on the husk of the agate and extend inward like a bowl.[23]

Sagenitic agates, or sagenites, have acicular (needle-shaped) inclusions of another mineral, usually anhydrite, aragonite, goethite, rutile, or a zeolite. Chalcedony often forms tubes around these crystals and may eventually replace the original mineral, resulting in a pseudomorph.[4]: The term "sagenite" was originally a name for a type of rutile, and later rutilated quartz. It has since been used to describe any quartz variety with acicular inclusions of any mineral.[24]

Tube agates contain tunnel-like structures that extend all the way through the agate.[25] These "tubes" may sometimes be banded or hollow, or both. Tube agates form when chalcedony grew around sagenitic inclusions embedded within the agate, forming stalactitic structures. Visible "eyes" can also appear on the surface of tube agates if a cut is made (or the agate is weathered) perpendicular to the stalactitic structure.[4]:

Dendritic agates have dark-colored, fern-like patterns (dendrites) that form on the surface or in the spaces between bands.[26][4]: They are composed of manganese or iron oxides. Moss agates exhibit a moss-like pattern and are usually green or brown in color. They form when dendritic structures on the surface of an agate are pushed inward with the silica gel during their formation. Moss agate was once believed to be petrified moss, until it was discovered the moss-like formations are actually composed of celadonite, hornblende, or a chlorite mineral. Plume agates are a type of moss agate, but the dendritic "plumes" form tree-like structures within the agate. They are often bright red (from inclusions of hematite) or bright yellow (from inclusions of goethite).[4]: While dendrites frequently occur in banded agates, moss and plume agates usually lack bands altogether. Therefore, they are not true agates according to the mineralogical definition.[1][27]

Iris agates have bands that are fine enough that when thinly sliced, they cause white light to be diffracted into its spectral colors. This "iris effect" usually occurs in colorless agates, but it can also occur in brightly colored ones.[4]:

Level-banded agates[edit | edit source]

Agates with level banding are traditionally called onyx, although the formal definition of the term onyx refers to color pattern, not the shape of the bands.[28] Accordingly, the name onyx is also used for wall-banded agates. Onyx is also frequently misused as a name for banded calcite. The name originates from the Greek word for the human nail, which has parallel ridges.[4]: Typically, onyx bands alternate between black and white or other light and dark colors. Sardonyx is a variety with red-to-brown bands alternated with either white or black bands.[29]

Thunder eggs are frequently level-banded, however they may also have wall banding. Level banding is also common in Lake Superior agates.[18]

Regional varieties[edit | edit source]

Agates are very common, and they have been found on every continent,[4]: including Antarctica.[30] In addition to the structural varieties detailed in the previous section, numerous geological, local, and trade names are used to describe agates from different localities.[4]: Below is a table of agate varieties from different regions of the world.Page Template:Sticky header/styles.css has no content.

Uses[edit | edit source]

Agate is frequently used as a gemstone in jewelry such as pins, brooches, necklaces, earrings, and bracelets. Agates have also historically been used in the art of hardstone carving to make knives, inkstands, seals, marbles, and other objects. Today, they are widely used to make beads, decorative displays, carvings, and cabochons, as well as face-polished and tumble-polished specimens of varying size and origin. Agate collecting is a popular hobby, and agate specimens can be found in numerous gift shops, museums, galleries, and private collections.[4]:

Industrial uses of agate exploit its hardness, ability to retain a highly polished surface finish and resistance to chemical attack. Historically, it was used to make bearings for highly accurate laboratory balances and mortars and pestles to crush and mix chemicals. During the Second World War, black agate beads mined from Queensland, Australia were used in the turn and bank indicators of military aircraft.[4]:

Agates, particularly moss agates, were first used during the Stone Age to make tools such as arrow and spear points, needles, and hide scrapers. Artifacts from as early as 7000 BCE have been found in Mongolia, and the Natufian people of the Levant are known to have made knives and arrowheads from moss agate as early as 10000 BCE. Agate jewelry from Sumeria has been dated to c. 2500 BCE, and the Ancient Egyptians, Mycenaeans, and Romans all used agate in their jewelry.[4]: Archaeological recovery at the Knossos site on Crete illustrates the role of agates in Bronze Age Minoan culture.[42] The ornamental use of agate was common in ancient Greece, in assorted jewelry and in the seal stones of Greek warriors.[43]

Idar-Oberstein was a historically important location in Germany that made use of agate on an industrial scale, dating back to c. 1375 CE.[4]: Originally, locally found agates were used to make all types of objects for the European market, but it became a globalized business around the turn of the 20th century. Idar-Oberstein began to import large quantities of agate from Brazil, as ship's ballast. Making use of a variety of proprietary chemical processes, they produced colored beads that were sold around the globe.[44]

Treatment and processing[edit | edit source]

Composite image of an agate slice showing natural color at the top and various artificial colors below

Many pale or dull agates are artificially treated to enhance their colors and make them more appealing to consumers. Chalcedony is one of the earliest stones to be artificially enhanced,[45] with heating having been used for centuries to produce the rich red color of carnelian.[46] Many varieties of chalcedony, including agate, are relatively porous and absorb dyes well.[45][46] The classical methods[47] of staining agates were developed in the early 19th century in Idar-Oberstein, Germany. After the agates were cut and cleaned, they were soaked for several days in a particular inorganic dye or sugar solution depending on the desired color to be achieved. This was often followed by an acid bath and/or heating ("burning") to oxidize the compounds:[45]

Organic aniline dyes derived from coal tar began to be used later in the 19th century,[45] which allowed for the production of agates of additional colors such as pink and purple. While the colors produced by the classical methods are typically permanent, the colors produced by organic dyes can fade with exposure to light or heat.[47] Organic dyes can also only penetrate a short distance into the agate from the exposed surfaces. The practice of artificially treating agates remains popular today, and dyed Brazilian agates in particular are very common on the global market.[4]:

Larger agates are often cut into halves or slices with circular diamond saws. They can then be polished with lapidary grinding, sanding, and polishing wheels of successively greater grit sizes.[4]: Smaller agates and crushed agate fragments can alternatively be polished using rock tumblers or vibratory polishers. This equipment can generate large quantities of silica dust. Respiratory diseases such as silicosis, and a higher incidence of tuberculosis among workers involved in the agate industry, have been studied in India and China.[48][49][50]

See also[edit | edit source]

References[edit | edit source]

  1. 1.0 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 "Agate". mindat.org. Hudson Institute of Mineralogy. Retrieved 10 February 2025.
  2. "Agate". gemdat.org. Retrieved 9 March 2025.
  3. "Agate Value, Price, and Jewelry Information". gemsociety.org. International Gem Society. Retrieved 9 March 2025.
  4. 4.00 4.01 4.02 4.03 4.04 4.05 4.06 4.07 4.08 4.09 4.10 4.11 4.12 4.13 4.14 4.15 4.16 4.17 4.18 4.19 4.20 4.21 4.22 4.23 4.24 4.25 4.26 4.27 4.28 4.29 4.30 4.31 4.32 4.33 4.34 4.35 4.36 4.37 4.38 4.39 4.40 4.41 4.42 4.43 4.44 4.45 4.46 4.47 4.48 4.49 4.50 4.51 4.52 4.53 4.54 4.55 4.56 4.57 4.58 Pabian, Roger; Jackson, Brian; Tandy, Peter; Cromartie, John (2016). Agates: Treasures of the Earth. Firefly Books. ISBN 978-1-77085-644-8.
  5. 5.0 5.1 5.2 "Chalcedony". mindat.org. Hudson Institute of Mineralogy. Retrieved 18 September 2025.
  6. Wang, Yifeng; Merino, Enrique (1990-06-01). "Self-organizational origin of agates: Banding, fiber twisting, composition, and dynamic crystallization model". Geochimica et Cosmochimica Acta. 54 (6): 1627–1638. Bibcode:1990GeCoA..54.1627W. doi:10.1016/0016-7037(90)90396-3. ISSN 0016-7037.
  7. 7.0 7.1 Brown, Nancy Marie (31 August 2001). "How Do Agates Form?". psu.edu. The Pennsylvania State University. Retrieved 3 March 2025.
  8. 8.0 8.1 8.2 8.3 8.4 8.5 Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 11–13. ISBN 978-1-59193-282-6.
  9. Moxon, Terry (October 2017). "A re-examination of water in agate and its bearing on the agate genesis enigma". Mineralogical Magazine. 81 (5): 1223–1244. Bibcode:2017MinM...81.1223M. doi:10.1180/minmag.2017.081.002. Retrieved 16 October 2025.
  10. 10.0 10.1 Moxon, T; Reed, S. J. B. (2006). "Agate and chalcedony from igneous and sedimentary hosts aged from 13 to 3480 Ma: a cathodoluminescence study". Mineralogical Magazine. 70 (5): 485–498. Bibcode:2006MinM...70..485M. doi:10.1180/0026461067050347. S2CID 54607138. Archived from the original on March 13, 2022. Retrieved October 1, 2006.
  11. Walger, Eckart; Mattheß, Georg; von Seckendorff, Volker; Liebau, Friedrich (August 2009). "The formation of agate structures: models for silica transport, agate layer accretion, and for flow patterns and flow regimes in infiltration channels". Neues Jahrbuch für Mineralogie - Abhandlungen. 186 (2): 113–152. Bibcode:2009NJMA..186..113W. doi:10.1127/0077-7757/2009/0141. Archived from the original on June 4, 2018. Retrieved March 3, 2020.
  12. Bates, R. L.; Jackson, J. A. (1987). Glossary of Geological Terms (3rd ed.). Alexandria, Virginia: American Geological Institute. p. 788. Retrieved 9 March 2025.
  13. "Enhydro Agate". mindat.org. Hudson Institute of Mineralogy. Retrieved 9 March 2025.
  14. "Fossil Agate". mindat.org. Hudson Institute of Mineralogy. Retrieved 9 March 2025.
  15. "Petrified Wood". mindat.org. Hudson Institute of Mineralogy. Retrieved 9 March 2025.
  16. "Agatized coral". mindat.org. Hudson Institute of Mineralogy. Retrieved 9 March 2025.
  17. 17.0 17.1 King, Hobart M. "Turritella Agate". geology.com. Retrieved 16 February 2025.
  18. 18.0 18.1 Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 34–37. ISBN 978-1-59193-282-6.
  19. Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 22–25. ISBN 978-1-59193-282-6.
  20. 20.0 20.1 Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 70–73. ISBN 978-1-59193-282-6.
  21. "Brecciated agate". Mindat.org. Hudson Institute of Mineralogy. Retrieved February 11, 2025.
  22. "Eye Agate". Mindat.org. Hudson Institute of Mineralogy. Retrieved February 11, 2025.
  23. Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 82–85. ISBN 978-1-59193-282-6.
  24. "Sagenite". mindat.org. Hudson Institute of Mineralogy. Retrieved 16 February 2025.
  25. Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 64–67. ISBN 978-1-59193-282-6.
  26. Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. pp. 78–81. ISBN 978-1-59193-282-6.
  27. Team, Geology In. "Moss Agate: Formation, Occurrence, Uses". Geology In. Retrieved 2025-02-11.
  28. "Onyx". mindat.org. Hudson Institute of Mineralogy. Retrieved February 9, 2025.
  29. "Sardonyx". mindat.org. Hudson Institute of Mineralogy. Retrieved February 10, 2025.
  30. 30.0 30.1 "Collins Harbour, King George Island, South Shetland Islands, Antarctic Peninsula, Western Antarctica, Antarctica". mindat.org. Hudson Institute of Mineralogy. Retrieved 16 February 2025.
  31. Welman-Purchase, Megan; Wicht, Joanna; Miller, Duncan; Roelofse, Frederick (April 2024). "Blue lace agate and chalcedony pseudomorphs from Ysterputs in southern Namibia". Journal of African Earth Sciences. 212 105211. Bibcode:2024JAfES.21205211W. doi:10.1016/j.jafrearsci.2024.105211.
  32. Suneson, Neil H.; Lyon, William G.; Goza, David (July–August 2013). "Boley Agate — Chert Breccia Clasts In The Vamoosa Formation" (PDF). Shale Shaker. 64 (1): 22–37. Retrieved 27 July 2025.
  33. Garvin, Paul (2010-09-13). Iowa's Minerals: Their Occurrence, Origins, Industries, and Lore. University of Iowa Press. ISBN 978-1-60938-014-4. Archived from the original on 2023-08-26. Retrieved 2020-10-29.
  34. Atkinson, Bill; Ackerman, Diane (2004). Within the Stone: Photography. BrownTrout Publishers. ISBN 978-0-7631-8189-5. Archived from the original on 2023-08-26. Retrieved 2020-10-29.
  35. "Crowley's Ridge Agates". Dwarves' Earth Treasures. Retrieved 17 February 2026.
  36. "Agate from Crowley's Ridge (Crowleys Ridge), Malden, Dunklin County, Missouri, USA". mindat.org. Hudson Institute of Mineralogy. Retrieved 17 February 2026.
  37. Guccione, M. J.; Prior, W. L.; Rutledge, E. M. (1986). "The Tertiary and Quaternary Geology of Crowley's Ridge: A Guidebook". Office of the State Geologist. Arkansas Geological Commission. Retrieved 17 February 2026.
  38. "Fairburn Agate". mindat.org. Hudson Institute of Mineralogy. Retrieved 16 February 2025.
  39. "Laguna Agate". www.mindat.org. Retrieved 2025-02-16.
  40. "Lake Superior Agate". mindat.org. Hudson Institute of Mineralogy. Retrieved 16 February 2025.
  41. Lynch, Dan R.; Lynch, Bob (2012). Lake Superior Agates Field Guide. Adventure Publications. ISBN 978-1-59193-282-6.
  42. C. Michael Hogan. 2007. Knossos fieldnotes, Modern Antiquarian Archived 2018-07-11 at the Wayback Machine
  43. "Masterpiece of Greek Art Found in the Griffin Warrior Tomb". Smithsonian. Smithsonian Institution. 7 November 2017.
  44. "Background Article on Idar Oberstein". Archived from the original on 2008-12-23. Retrieved 2008-11-27.
  45. 45.0 45.1 45.2 45.3 45.4 45.5 45.6 45.7 Russell, Daniel (13 January 2008). "Historic Methods of Artificially Coloring Agates". mindat.org. Hudson Institute of Mineralogy. Retrieved 8 September 2025.
  46. 46.0 46.1 46.2 46.3 "treated gem". Encyclopedia Britannica. 6 November 2016. Retrieved 8 September 2025.
  47. 47.0 47.1 de Almeida Silva, Rodrigo; Petter, Carlos Otavio; Schneider, Ivo André H. (September 2007). "Avaliação da perda da coloração artificial de ágatas". Rem: Revista Escola de Minas. 60 (3): 477–482. doi:10.1590/S0370-44672007000300007. hdl:10183/10181.
  48. Chaudhury, Nayanjeet; Phatak, Ajay; Paliwal, Rajiv (January 2012). "Co-morbidities among silicotics at Shakarpur: A follow up study". Lung India. 29 (1): 6–10. doi:10.4103/0970-2113.92348. PMC 3276038. PMID 22345906.
  49. Jiang, CQ; Xiao, LW; Lam, TH; Xie, NW; Zhu, CQ (July 2001). "Accelerated silicosis in workers exposed to agate dust in Guangzhou, China". American Journal of Industrial Medicine. 40 (1): 87–91. doi:10.1002/ajim.1074. PMID 11439400.
  50. Tiwari, RR; Narain, R; Sharma, YK; Kumar, S (September 2010). "Comparison of respiratory morbidity between present and ex-workers of quartz crushing units: Healthy workers' effect". Indian Journal of Occupational and Environmental Medicine. 14 (3): 87–90. doi:10.4103/0019-5278.75695. PMC 3062020. PMID 21461160.

External links[edit | edit source]

  • "Agates", School of Natural Resources, University of Nebraska-Lincoln (retrieved 27 December 2014).

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