Icosahedrite
A valid IMA mineral species
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About Icosahedrite
Formula:
Al63Cu24Fe13
Colour:
Dark grey-black
Lustre:
Metallic
Crystal System:
Icosahedral
Name:
Named for the icosahedral symmetry of its internal atomic arrangement, as observed in its diffraction pattern.
The first quasicrystal (http://en.wikipedia.org/wiki/Quasicrystal) described as a mineral species.
Compare decagonite, the second natural quasicrystal approved.
Chemically similar to 'Unnamed (Al-Cu-Fe Alloy)' and 'Unnamed (Al-Cu-Fe Alloy II)'.
The vast majority of minerals are crystalline materials, with structures in which a particular arrangement of atoms repeats regularly by translation, like a 3-D wallpaper pattern. Only certain types of rotation axes in the crystal symmetry are compatible with this: 2-fold, 3-fold, 4-fold and 6-fold rotations, and the combination of four 3-fold axes with additional 2- and/or 4-fold axes that gives rise to "cubic" symmetry.
Quasicrystals are a recently discovered type of solid material that use quite different organising principles for arranging their atoms. They do not have an atomic arrangement which repeats regularly by translation, but they do have rotational symmetry about axes which can be of "crystallographically forbidden" orders such as 5-fold, 8-fold, 10-fold and 12-fold, as well as the combination of six intersecting 5-fold axes that is characteristic of the Platonic dodecahedron and icosahedron. Despite the absence of a straightforward, regular repeat unit, they retain a high degree of organisation. Quasicrystalline structures can be made by using more than one type of building block, which fit together via stringent rules so that there are no gaps, no overlaps, but also no repetition. There is still enough regularity in the structure that sharp periodicities occur in the diffraction pattern, albeit with a fractal distribution rather than uniform spacing of frequencies.
Quasicrystal diffraction patterns were first obtained from synthetic aluminium-manganese alloys by Dan Shechtman in 1982, but early observations were regarded with considerable scepticism, even by such eminent crystallographers as Linus Pauling. However, more and more examples were discovered independently by
several research teams, and thermodynamic stability in a quasicrystal alloy was first shown in 1987. Hundreds of synthetic quasicrystal materials are now known, along with chemically similar "approximant" compounds in which regular repeating mistakes convert the quasicrystal atomic arrangement into a normal crystal.
Although quasicrystals can have a well-defined point group ("crystal class") symmetry, they are aperiodic, so other conventional crystallographic concepts such as "lattice type", "space group","unit cell parameters" and "unit cell content" do not apply to the structure as normally considered in three dimensions. However,
it is mathematically possible to generate quasicrystalline structures by taking 3-D slices that are precisely but irrationally oriented through higher-dimensional structures that are periodic: the icosahedral-symmetry quasicrystalline structure of icoashedrite can then be described as a carefully chosen slice through a 6-dimensional hypercubic (hyper)crystal!
In 2011, Dan Shechtman received the Nobel Prize in Chemistry for his discovery of the first quasicrystal. The year previously, Luca Bindi's icosahedrite, the first naturally-occuring quasicrystal, was approved as a new mineral by the Commission on New Minerals and Mineral Classification (IMA 2010-042).
In 2012, Bindi's group published evidence that natural icosahedrite is extraterrestrial in origin. It occurs with other Cu-Al-Fe alloys and a suite of silicates and oxides such as diopside, forsterite, spinel and the extremely high-pressure SiO2 polymorph stishovite (which contains icosahedrite as inclusions!). The assemblage and oxygen isotopic composition are consistent with formation not on Earth, but in a refractory calcium-aluminium-rich inclusion in a CV3 chondritic meteorite.
See also Bindi et al. (2022) paper on another - dodecagonal - quasicrystal, Unnamed (Mn-Si-Cr-Al-Ni Quasicrystal), formed via interaction of a lightning and an eolian dune.
Compare decagonite, the second natural quasicrystal approved.
Chemically similar to 'Unnamed (Al-Cu-Fe Alloy)' and 'Unnamed (Al-Cu-Fe Alloy II)'.
The vast majority of minerals are crystalline materials, with structures in which a particular arrangement of atoms repeats regularly by translation, like a 3-D wallpaper pattern. Only certain types of rotation axes in the crystal symmetry are compatible with this: 2-fold, 3-fold, 4-fold and 6-fold rotations, and the combination of four 3-fold axes with additional 2- and/or 4-fold axes that gives rise to "cubic" symmetry.
Quasicrystals are a recently discovered type of solid material that use quite different organising principles for arranging their atoms. They do not have an atomic arrangement which repeats regularly by translation, but they do have rotational symmetry about axes which can be of "crystallographically forbidden" orders such as 5-fold, 8-fold, 10-fold and 12-fold, as well as the combination of six intersecting 5-fold axes that is characteristic of the Platonic dodecahedron and icosahedron. Despite the absence of a straightforward, regular repeat unit, they retain a high degree of organisation. Quasicrystalline structures can be made by using more than one type of building block, which fit together via stringent rules so that there are no gaps, no overlaps, but also no repetition. There is still enough regularity in the structure that sharp periodicities occur in the diffraction pattern, albeit with a fractal distribution rather than uniform spacing of frequencies.
Quasicrystal diffraction patterns were first obtained from synthetic aluminium-manganese alloys by Dan Shechtman in 1982, but early observations were regarded with considerable scepticism, even by such eminent crystallographers as Linus Pauling. However, more and more examples were discovered independently by
several research teams, and thermodynamic stability in a quasicrystal alloy was first shown in 1987. Hundreds of synthetic quasicrystal materials are now known, along with chemically similar "approximant" compounds in which regular repeating mistakes convert the quasicrystal atomic arrangement into a normal crystal.
Although quasicrystals can have a well-defined point group ("crystal class") symmetry, they are aperiodic, so other conventional crystallographic concepts such as "lattice type", "space group","unit cell parameters" and "unit cell content" do not apply to the structure as normally considered in three dimensions. However,
it is mathematically possible to generate quasicrystalline structures by taking 3-D slices that are precisely but irrationally oriented through higher-dimensional structures that are periodic: the icosahedral-symmetry quasicrystalline structure of icoashedrite can then be described as a carefully chosen slice through a 6-dimensional hypercubic (hyper)crystal!
In 2011, Dan Shechtman received the Nobel Prize in Chemistry for his discovery of the first quasicrystal. The year previously, Luca Bindi's icosahedrite, the first naturally-occuring quasicrystal, was approved as a new mineral by the Commission on New Minerals and Mineral Classification (IMA 2010-042).
In 2012, Bindi's group published evidence that natural icosahedrite is extraterrestrial in origin. It occurs with other Cu-Al-Fe alloys and a suite of silicates and oxides such as diopside, forsterite, spinel and the extremely high-pressure SiO2 polymorph stishovite (which contains icosahedrite as inclusions!). The assemblage and oxygen isotopic composition are consistent with formation not on Earth, but in a refractory calcium-aluminium-rich inclusion in a CV3 chondritic meteorite.
See also Bindi et al. (2022) paper on another - dodecagonal - quasicrystal, Unnamed (Mn-Si-Cr-Al-Ni Quasicrystal), formed via interaction of a lightning and an eolian dune.
Unique Identifiers
Mindat ID:
40647
Long-form identifier:
mindat:1:1:40647:7
IMA Classification of Icosahedrite
Classification of Icosahedrite
1.AA.40
1 : ELEMENTS (Metals and intermetallic alloys; metalloids and nonmetals; carbides, silicides, nitrides, phosphides)
A : Metals and Intermetallic Alloys
A : Copper-cupalite family
1 : ELEMENTS (Metals and intermetallic alloys; metalloids and nonmetals; carbides, silicides, nitrides, phosphides)
A : Metals and Intermetallic Alloys
A : Copper-cupalite family
Mineral Symbols
As of 2021 there are now IMA–CNMNC approved mineral symbols (abbreviations) for each mineral species, useful for tables and diagrams.
| Symbol | Source | Reference for Standard |
|---|---|---|
| Ihd | IMA–CNMNC | Warr, L.N. (2021). IMA–CNMNC approved mineral symbols. Mineralogical Magazine, 85(3), 291-320. doi:10.1180/mgm.2021.43 |
Physical Properties of Icosahedrite
Metallic
Transparency:
Opaque
Colour:
Dark grey-black
Streak:
Gray
Fracture:
Irregular/Uneven
Comment:
The density could not be determined.
Optical Data of Icosahedrite
Type:
Isotropic
Bireflectance:
None
Reflectivity:
| Wavelength | R1 (%) |
|---|---|
| 471nm | 62.3% |
| 548nm | 60.6% |
| 586nm | 58.1% |
| 652nm | 56.0% |
Graph shows reflectance levels at different wavelengths (in nm). Peak reflectance is 62.3%.
Comments:
Reflectance percentages (Rmin = Rmax) for the four standard COM wavelengths are 62.3 (471.1 nm), 60.6 (548.3 nm), 58.1 (586.6 nm), and 56.0 (652.3 nm), respectively.
Chemistry of Icosahedrite
Mindat Formula:
Al63Cu24Fe13
Element Weights:
Elements listed:
Common Impurities:
Al62.2Cu25.7Fe10.7Si0.4Ni0.1Cr0.1
Crystallography of Icosahedrite
Crystal System:
Icosahedral
Class (H-M):
53m - point symmetry group
Space Group:
Fm35
Morphology:
Anhedral to subhedral grains <0.1mm in the type specimen.
Comment:
The structure is not reducible to a single three-dimensional unit cell, so neither cell parameters nor Z can be given. The X-ray powder pattern was indexed on the basis of six integer indices, as conventionally used with quasicrystals, where the lattice parameter (in six-dimensional notation) is measured to be a6D = 12.64 Å, with probable space group Fm-3-5.
X-Ray Powder Diffraction
Powder Diffraction Data:
| d-spacing | Intensity |
|---|---|
| 3.41 Å | (25) |
| 2.006 Å | (100) |
| 2.108 Å | (90) |
| 1.238 Å | (30) |
Geological Environment
Paragenetic Mode(s):
| Paragenetic Mode | Earliest Age (Ga) |
|---|---|
| Stage 2: Planetesimal differentiation and alteration | 4.566-4.550 |
| 6 : Secondary asteroid phases | 4.566-4.560 |
Geological Setting:
hollisterite- and stolperite-bearing association
Type Occurrence of Icosahedrite
General Appearance of Type Material:
Dark gray-black anhedral to subhedral grains up to 100 μm across.
Place of Conservation of Type Material:
Natural History Museum, University of Florence, Italy (46407/G).
Geological Setting of Type Material:
Meteorite
Associated Minerals at Type Locality:
Synonyms of Icosahedrite
Other Language Names for Icosahedrite
Dutch:Icosahedriet
German:Ikosaedrit
Common Associates
Associations Based on Photo Data:
| 1 photo of Icosahedrite associated with Hollisterite | Al3Fe |
| 1 photo of Icosahedrite associated with Khatyrkite | (Cu,Zn)Al2 |
| 1 photo of Icosahedrite associated with Forsterite | Mg2(SiO4) |
| 1 photo of Icosahedrite associated with Stolperite | AlCu |
Related Minerals - Strunz-mindat Grouping
| 1.AA. | Jonlarsenite | Al4Cu9 |
| 1.AA. | Pratesiite | AgCuTe2 |
| 1.AA.05 | Native Lead | Pb |
| 1.AA.05a | Auricupride Subgroup | |
| 1.AA.05 | Native Nickel | Ni |
| 1.AA.05 | Native Silver | Ag |
| 1.AA.05 | 'UM2004-08-E:AuCuPd' | Cu2PdAu |
| 1.AA.05 | 'UM1991-06-E:AuCu' | Au3Cu |
| 1.AA.05 | Native Aluminium | Al |
| 1.AA.05 | Steinhardtite | Al0.38Ni0.32Fe0.30 |
| 1.AA.05 | Native Gold | Au |
| 1.AA.05 | Native Copper | Cu |
| 1.AA.05 | Copper Group | |
| 1.AA.10a | Cuproauride | Cu3Au |
| 1.AA.10b | Tetra-auricupride | AuCu |
| 1.AA.10a | Auricupride | Cu3Au |
| 1.AA.10 | Nickel Group | |
| 1.AA.15 | Anyuiite | AuPb2 |
| 1.AA.15 | Novodneprite | AuPb3 |
| 1.AA.15 | 'UM1985-02-E:AlZn' | (Zn,Cu)Al2 |
| 1.AA.15 | Khatyrkite | (Cu,Zn)Al2 |
| 1.AA.20 | Cupalite | (Cu,Zn)Al |
| 1.AA.25 | Hunchunite | Au2Pb |
| 1.AA.30 | Stolperite | AlCu |
| 1.AA.35 | Hollisterite | Al3Fe |
| 1.AA.45 | Kryachkoite | (Al,Cu)6(Fe,Cu) |
| 1.AA.50 | Proxidecagonite | Al34Ni9Fe2 |
Other Information
Health Risks:
No information on health risks for this material has been entered into the database. You should always treat mineral specimens with care.
Internet Links for Icosahedrite
mindat.org URL:
https://www.mindat.org/min-40647.html
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References for Icosahedrite
Reference List:
Bindi, L., Steinhardt, P. J., Yao, N., Lu, P. J. (2009) Natural Quasicrystals. Science, 324 (5932). 1306-1309 doi:10.1126/science.1170827
Williams, P. A., Hatert, F., Pasero, M., Mills, S. J. (2010) CNMNC Newsletter No 6, New minerals and nomenclature modifications approved in 2010. Mineralogical Magazine, 74 (6) 941-942 doi:10.1180/minmag.2010.074.6.941
Bindi, L., Steinhardt, P. J., Yao, N., Lu, P. J. (2011) Icosahedrite, Al63Cu24Fe13, the first natural quasicrystal. American Mineralogist, 96 (5) 928-931 doi:10.2138/am.2011.3758
Bindi, L., Eiler, J. M., Guan, Y., Hollister, L. S., MacPherson, G., Steinhardt, P. J., Yao, N. (2012) Evidence for the extraterrestrial origin of a natural quasicrystal. Proceedings of the National Academy of Sciences, 109 (5) 1396-1401 doi:10.1073/pnas.1111115109
Ma, C., Lin, C., Bindi, L., Steinhardt, P.J. (2016) Discovery of new Al-Cu-Fe minerals in the Khatyrka CV3 meteorite. 79th Annual Meeting of the Meteoritical Society.
Bindi, Luca; Pasek, Matthew A.; Ma, Chi; Hu, Jinping; Cheng, Guangming; Yao, Nan; Asimow, Paul D.; Steinhardt, Paul J. (2022) Electrical discharge triggers quasicrystal formation in an eolian dune. Proceedings of the National Academy of Sciences, 120 (1). doi:10.1073/pnas.2215484119
Pereti, Claudio; Bernot, Kevin; Guizouarn, Thierry; Laufek, František; Vymazalová, Anna; Bindi, Luca; Sessoli, Roberta; Fanelli, Duccio (2023) From individual elements to macroscopic materials: in search of new superconductors via machine learning. npj Computational Materials, 9 (1). 71 doi:10.1038/s41524-023-01023-6
Takakura, H.; Mizunuma, K.; Yamada, T.; Bosak, A.; Formisano, F.; Paolasini, L.; de Boissieu, M.; Steinhardt, P. J.; Bindi, L. (2025) High-resolution synchrotron X-ray study of icosahedrite, an icosahedral AlCuFe quasicrystal from the Khatyrka meteorite. IUCrJ, 12 (4). 435-443 doi:10.1107/s2052252525004130
Localities for Icosahedrite
Showing 2 localities.
Locality List
- This locality has map coordinates listed.
- This locality has estimated coordinates.
ⓘ - Click for references and further information on this occurrence.
? - Indicates mineral may be doubtful at this locality.
- Good crystals or important locality for species.
- World class for species or very significant.
(TL) - Type Locality for a valid mineral species.
(FRL) - First Recorded Locality for everything else (eg varieties).
All localities listed without proper references should be considered as questionable.
Russia (TL) | |
| Williams et al. (2010) +1 other reference |
| Science 324 (2009) |
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The
Khatyrka meteorite, Iomrautvaam massif, Anadyrsky District, Chukotka Autonomous Okrug, Russia