Pseudobrookite
A valid IMA mineral species - grandfathered
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About Pseudobrookite
Formula:
Fe3+2Ti4+O5
Colour:
Brownish black, reddish brown, or black
Lustre:
Adamantine, Greasy, Metallic
Hardness:
6
Specific Gravity:
4.33 - 4.39
Crystal System:
Orthorhombic
Member of:
Name:
From the Greek ψευδής, false, and brookite since its resemblance to brookite is misleading.
Type Locality:
Armalcolite-Pseudobrookite Series.
See also "karrooite" and compare also Unnamed (Monoclinic polymorph of pseudobrookite).
A larger number of synthetic analogues are known and well studied.
See also "karrooite" and compare also Unnamed (Monoclinic polymorph of pseudobrookite).
A larger number of synthetic analogues are known and well studied.
Unique Identifiers
Mindat ID:
3302
Long-form identifier:
mindat:1:1:3302:8
IMA Classification of Pseudobrookite
Approved, 'Grandfathered' (first described prior to 1959)
IMA status notes:
Redefined by the IMA
First published:
1878
Approval history:
Redefined 1988 s.p.: Bowles (1988).
Classification of Pseudobrookite
4.CB.15
4 : OXIDES (Hydroxides, V[5,6] vanadates, arsenites, antimonites, bismuthites, sulfites, selenites, tellurites, iodates)
C : Metal: Oxygen = 2: 3,3: 5, and similar
B : With medium-sized cations
4 : OXIDES (Hydroxides, V[5,6] vanadates, arsenites, antimonites, bismuthites, sulfites, selenites, tellurites, iodates)
C : Metal: Oxygen = 2: 3,3: 5, and similar
B : With medium-sized cations
7.7.1.1
7 : MULTIPLE OXIDES
7 : AB2X5
7 : MULTIPLE OXIDES
7 : AB2X5
7.9.16
7 : Oxides and Hydroxides
9 : Oxides of Ti
7 : Oxides and Hydroxides
9 : Oxides of Ti
Mineral Symbols
As of 2021 there are now IMA–CNMNC approved mineral symbols (abbreviations) for each mineral species, useful for tables and diagrams.
Please only use the official IMA–CNMNC symbol. Older variants are listed for historical use only.
Please only use the official IMA–CNMNC symbol. Older variants are listed for historical use only.
| Symbol | Source | Reference for Standard |
|---|---|---|
| Pbrk | IMA–CNMNC | Warr, L.N. (2021). IMA–CNMNC approved mineral symbols. Mineralogical Magazine, 85(3), 291-320. doi:10.1180/mgm.2021.43 |
| Psb | Whitney & Evans (2010) | Whitney, D.L. and Evans, B.W. (2010) Abbreviations for names of rock-forming minerals. American Mineralogist, 95, 185–187 doi:10.2138/am.2010.3371 |
Physical Properties of Pseudobrookite
Adamantine, Greasy, Metallic
Transparency:
Transparent, Opaque
Comment:
Greasy on fractures, may be tarnished iridescent
Colour:
Brownish black, reddish brown, or black
Streak:
Reddish brown to ocher-yellow
Hardness:
6 on Mohs scale
Cleavage:
Distinct/Good
On {010} distinct
On {010} distinct
Fracture:
Irregular/Uneven, Sub-Conchoidal
Density:
4.33 - 4.39 g/cm3 (Measured) 4.39 g/cm3 (Calculated)
Optical Data of Pseudobrookite
Type:
Biaxial (+)
RI values:
nα = 2.35 - 2.38 nβ = 2.36 - 2.39 nγ = 2.38 - 2.42
2V:
Measured: 50° , Calculated: 80°
Max. Birefringence:
δ = 0.030 - 0.040
Based on recorded range of RI values above.
Based on recorded range of RI values above.
Interference Colours:
The colours simulate birefringence patterns seen in thin section under crossed polars. They do not take into account mineral colouration or opacity.
Michel-Levy Bar The default colours simulate the birefringence range for a 30 µm thin-section thickness. Adjust the slider to simulate a different thickness.
Grain Simulation You can rotate the grain simulation to show how this range might look as you rotated a sample under crossed polars. Each grain retains its interference colour (retardation) while its brightness falls to black at extinction and reaches a maximum between extinction positions.
The colours simulate birefringence patterns seen in thin section under crossed polars. They do not take into account mineral colouration or opacity.
Michel-Levy Bar The default colours simulate the birefringence range for a 30 µm thin-section thickness. Adjust the slider to simulate a different thickness.
Grain Simulation You can rotate the grain simulation to show how this range might look as you rotated a sample under crossed polars. Each grain retains its interference colour (retardation) while its brightness falls to black at extinction and reaches a maximum between extinction positions.
Surface Relief:
Very High (positive)
Relative to Canada balsam mounting medium (n ≈ 1.537).
Relative to Canada balsam mounting medium (n ≈ 1.537).
This shows the grain boundary and Becke line effect under plane-polarised
light, based on the contrast between this mineral's average refractive
index and the mounting medium. It does not take into account mineral
colouration.
In focus
Interference Figure:
This shows the idealized biaxial acute bisectrix (Bxa) interference figure
- the conoscopic view for a grain cut perpendicular to the acute bisectrix, using
this mineral's 2V. The two small white dots mark the melatopes - the points
where the two optic axes emerge - and are shown only when they fall within the
field of view. The coloured bands are isochromatics, and the dark bands are
isogyres.
Rotate the stage: at 0°/90° the isogyres form a cross through the melatopes; at 45° they pull apart into curved hyperbolas. That splitting on rotation - absent in a uniaxial figure - is the standard diagnostic test for telling biaxial minerals from uniaxial ones. If 2V is large, the melatopes may fall outside the field of view, as they often do at the microscope too.
Rotate the stage: at 0°/90° the isogyres form a cross through the melatopes; at 45° they pull apart into curved hyperbolas. That splitting on rotation - absent in a uniaxial figure - is the standard diagnostic test for telling biaxial minerals from uniaxial ones. If 2V is large, the melatopes may fall outside the field of view, as they often do at the microscope too.
Dispersion:
none
Optical Extinction:
Y = a; Z = c; X ∧ a = 26°.
Reflectivity:
| Wavelength | R1 (%) | R2 (%) |
|---|---|---|
| 400nm | 22.8% | 24.0% |
| 420nm | 21.9% | 23.1% |
| 440nm | 21.2% | 22.3% |
| 460nm | 20.5% | 21.4% |
| 480nm | 19.8% | 20.7% |
| 500nm | 19.4% | 20.4% |
| 520nm | 19.0% | 19.9% |
| 540nm | 18.5% | 19.3% |
| 560nm | 18.1% | 18.8% |
| 580nm | 17.8% | 18.5% |
| 600nm | 17.5% | 18.1% |
| 620nm | 17.3% | 17.9% |
| 640nm | 17.1% | 17.7% |
| 660nm | 17.0% | 17.6% |
| 680nm | 16.8% | 17.4% |
| 700nm | 16.7% | 17.3% |
Graph shows reflectance levels at different wavelengths (in nm). Peak reflectance is 24.0%.
R1 shown in black, R2 shown in red
Pleochroism:
Weak
Comments:
In browns.
Chemistry of Pseudobrookite
Mindat Formula:
Fe3+2Ti4+O5
Element Weights:
Elements listed:
Crystallography of Pseudobrookite
Crystal System:
Orthorhombic
Class (H-M):
mmm(2/m2/m2/m) - Dipyramidal
Space Group:
Cmcm
Cell Parameters:
a = 9.7965(25) Å, b = 9.9805(25) Å, c = 3.7301(1) Å
Ratio:
a:b:c = 0.982 : 1 : 0.374
Unit Cell V:
364.71 ų (Calculated from Unit Cell)
Z:
4
Morphology:
Crystals usually tabular {100} and elongated [001]; long prismatic at times or needle-like [001]. {100} and {hk0} striated [001].
Twinning:
Reported on various {hk0} planes (doubtful).
Comment:
Space Group: Bbmm
Crystallographic forms of Pseudobrookite
Crystal Atlas:
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Data courtesy of the American Mineralogist Crystal Structure Database. Click on an AMCSD ID to view structure
| ID | Species | Reference | Link | Year | Locality | Pressure (GPa) | Temp (K) |
|---|---|---|---|---|---|---|---|
| 0002080 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 0 | 293 | |
| 0002073 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 0 | 293 | |
| 0018179 | Pseudobrookite | Pauling L (1930) The crystal structure of pseudobrookite _cod_database_code 1011342 Zeitschrift fur Kristallographie 73 97-113 | 1930 | 0 | 293 | ||
| 0002081 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 1.03 | 293 | |
| 0002074 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 1.03 | 293 | |
| 0002082 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 2.16 | 293 | |
| 0002075 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 2.16 | 293 | |
| 0002083 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 3.22 | 293 | |
| 0002076 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 3.22 | 293 | |
| 0002084 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 4.34 | 293 | |
| 0002077 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 4.34 | 293 | |
| 0002085 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 6.2 | 293 | |
| 0002078 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 6.2 | 293 | |
| 0002086 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 7.51 | 293 | |
| 0002079 | Pseudobrookite | Yang H, Hazen R M (1999) Comparative high-pressure crystal chemistry of karrooite, MgTi2O5, with different ordering states American Mineralogist 84 130-137 | ![]() | 1999 | 7.51 | 293 |
CIF Raw Data - click here to close
Epitaxial Relationships of Pseudobrookite
Epitaxial Minerals:
| 'Hematite' | Fe2O3 |
| 'Magnetite' | Fe2+Fe3+2O4 |
| 'Rutile' | TiO2 |
Epitaxy Comments:
Pseudobrookite on hematite with pseudobrookite {121}[210] parallel to hematite {0001}[1100].
Pseudobrookite on magnetite with pseudobrookite {100}[001] parallel to magnetite {111}[110].
Oriented inclusions of rutile in pseudobrookite.
Pseudobrookite on magnetite with pseudobrookite {100}[001] parallel to magnetite {111}[110].
Oriented inclusions of rutile in pseudobrookite.
X-Ray Powder Diffraction
Powder Diffraction Data:
| d-spacing | Intensity |
|---|---|
| 3.486 Å | (100) |
| 2.752 Å | (77) |
| 4.901 Å | (42) |
| 2.458 Å | (23) |
| 1.8657 Å | (23) |
| 2.407 Å | (22) |
| 1.9733 Å | (22) |
Comments:
Synthetic, ICDD 41-1432.
Geological Environment
Paragenetic Mode(s):
| Paragenetic Mode | Earliest Age (Ga) |
|---|---|
| Stage 3a: Earth’s earliest Hadean crust | >4.50 |
| 10 : Basalt-hosted zeolite minerals | |
| Stage 4b: Highly evolved igneous rocks | >3.0 |
| 35 : Ultra-alkali and agpaitic igneous rocks | |
| Stage 10a: Neoproterozoic oxygenation/terrestrial biosphere | <0.6 |
| 50 : Coal and/or oil shale minerals | <0.36 |
| 51 : Pyrometamorphic minerals (see also #54 and #56) | <0.36 |
| Stage 10b: Anthropogenic minerals | <10 Ka |
| 54 : Coal and other mine fire minerals (see also #51 and #56) |
Geological Setting:
Magmatic, post-volcanic or young volcanic rocks. Typically formed by pneumatolytic processes in titanium-rich andesite, rhyolite, basalt, etc., and by reactions with xenoliths within these; in lithophysae. Rarely in plutonic rocks.
Type Occurrence of Pseudobrookite
Place of Conservation of Type Material:
Pseudobrookite, Fe3+ 2Ti4+ O5, was first discovered and described on the basis of material from Măgura Uroiului, Romania. The structures and compositions determined for samples CMNMC 93855 and Á.59.6103, both from this locality (Table 2), are consistent with pseudobrookite (Tables 3 and 4; Figure 10; Supplements 4, 8 and 11). As explained above, an originally designated type specimen of pseudobrookite is not extant. Sample Á.59.6103 was donated by Prof. Antal Koch (who originally described this species: Koch 1878a) to the Hungarian National Museum prior to February 2, 1880; that is, shortly after the publication of the original description (personal communication, Gábor Papp). Sample Á.59.6103 has therefore been designated as the neotype of pseudobrookite. Sample CMNMC 93855 (BTL) Canadian Museum of Nature (obtained from Belkis Minerals) has been designated as the cotype for pseudobrookite.
Associated Minerals at Type Locality:
Other Language Names for Pseudobrookite
Varieties of Pseudobrookite
| Chromium-bearing Kennedyite | |
| Kennedyite | A Mg-bearing pseudobrookite. |
Relationship of Pseudobrookite to other Species
Member of:
Other Members of Pseudobrookite Group:
| Armalcolite | MgTi4+2O5 | Orth. mmm(2/m2/m2/m) |
| Ferropseudobrookite | Fe2+Ti4+2O5 | Orth. mmm(2/m2/m2/m) : Cmcm |
| Griffinite | Al2Ti4+O5 | Orth. mmm(2/m2/m2/m) : Cmcm |
| Sassite | Ti3+2Ti4+O5 | Orth. mmm(2/m2/m2/m) : Cmcm |
Forms a series with:
Common Associates
Associations Based on Photo Data:
| 203 photos of Pseudobrookite associated with Hematite | Fe2O3 |
| 169 photos of Pseudobrookite associated with Enstatite | Mg2Si2O6 |
| 147 photos of Pseudobrookite associated with Sanidine | K(AlSi3O8) |
| 102 photos of Pseudobrookite associated with Topaz | Al2(SiO4)(F,OH)2 |
| 96 photos of Pseudobrookite associated with Tridymite | SiO2 |
| 54 photos of Pseudobrookite associated with Bixbyite-(Mn) | Mn3+2O3 |
| 52 photos of Pseudobrookite associated with Quartz | SiO2 |
| 44 photos of Pseudobrookite associated with Forsterite | Mg2(SiO4) |
| 41 photos of Pseudobrookite associated with Fluorophlogopite | KMg3(Si3Al)O10F2 |
| 35 photos of Pseudobrookite associated with Mullite | Al4+2xSi2-2xO10-x |
Related Minerals - Strunz-mindat Grouping
| 4.CB. | Magnesiohögbomite-6N12S | Mg5Al11TiO23(OH) |
| 4.CB. | Kidodite | BaMg2Fe16O27 |
| 4.CB. | Ferrohögbomite-2N2S | [(Fe2+,Mg,Zn,Al)3(Al,Ti,Fe3+)8O15(OH)]2 |
| 4.CB. | Zhenruite | (MoO3)2 · H2O |
| 4.CB. | Fuyuanite | Mg7Nb6O18(OH)8 |
| 4.CB. | Virgilluethite | MoO3 · H2O |
| 4.CB. | Pengite | (Pb8Sb3+3)Σ11Sb5+9O35 |
| 4.CB.05 | Brizziite | NaSb5+O3 |
| 4.CB.05 | Tistarite | Ti3+2O3 |
| 4.CB.05 | Hematite | Fe2O3 |
| 4.CB.05 | Ecandrewsite | ZnTiO3 |
| 4.CB.05 | Melanostibite | Mn2+2Fe3+Sb5+O6 |
| 4.CB.05 | 'UM1998-11-O-AuHSb' | Au+2Sb3+O2(OH) |
| 4.CB.05 | Karelianite | V3+2O3 |
| 4.CB.05 | Corundum | Al2O3 |
| 4.CB.05 | Eskolaite | Cr2O3 |
| 4.CB.05 | Geikielite | MgTiO3 |
| 4.CB.05 | Akimotoite | MgSiO3 |
| 4.CB.05 | 'Unnamed (Fe-Cr Oxide)' | FeCrO3 |
| 4.CB.05 | 'Auroantimonate' | AuSbO3 |
| 4.CB.05 | Hemleyite | Fe2+SiO3 |
| 4.CB.05 | Ilmenite | Fe2+TiO3 |
| 4.CB.05 | Pyrophanite | Mn2+TiO3 |
| 4.CB.10 | Bixbyite-(Fe) | (Fe,Mn)2O3 |
| 4.CB.10 | Bixbyite-(Mn) | Mn3+2O3 |
| 4.CB.10 | Avicennite | Tl3+2O3 |
| 4.CB.15 | Armalcolite | MgTi4+2O5 |
| 4.CB.15 | Ferropseudobrookite | Fe2+Ti4+2O5 |
| 4.CB.15 | Griffinite | Al2Ti4+O5 |
| 4.CB.15 | Pseudobrookite Group | |
| 4.CB.15 | Sassite | Ti3+2Ti4+O5 |
| 4.CB.20 | Zincovelesite-6N6S | Zn3(Fe3+,Mn3+,Al,Ti)8O15(OH) |
| 4.CB.20 | Magnesiohögbomite-2N4S | (Mg8.43Fe2+1.57)Σ=10Al22Ti4+2O46(OH)2 |
| 4.CB.20 | Magnesiobeltrandoite-2N3S | (Mg6Al2)(Al18Fe3+2)O38(OH)2 |
| 4.CB.20 | Zincohögbomite-2N6S | [(Zn,Mg)7(Al,Fe3+,Ti)16O31(OH)]2 |
| 4.CB.20 | Magnesiohögbomite-6N6S | [(Mg,Fe2+)3(Al,Ti,Fe3+)8O15(OH)]6 |
| 4.CB.20 | Magnesiohögbomite-2N3S | [(Mg,Fe2+,Zn)4(Al,Ti,Fe3+)10O19(OH)]2 |
| 4.CB.20 | Magnesiohögbomite-2N2S | [(Mg,Fe2+)3[Al7(Ti,Fe3+)]O15(OH)]2 |
| 4.CB.20 | 'Ferrohögbomite-6N12S' | [(Fe2+,Mg,Zn)5(Al,Ti,Fe3+)12O23(OH)]6 |
| 4.CB.20 | Zincohögbomite-2N2S | [(Zn,Al,Fe2+)3(Al,Fe3+,Ti)8O15(OH)]2 |
| 4.CB.25 | Kleberite | FeTi6O11(OH)5 |
| 4.CB.25 | Pseudorutile | Fe3+2Ti4+3O9 |
| 4.CB.30 | Oxyvanite | V3+2V4+O5 |
| 4.CB.30 | Berdesinskiite | V3+2TiO5 |
| 4.CB.30 | Kaitianite | Ti3+2Ti4+O5 |
| 4.CB.35 | Machiite | Al2Ti3O9 |
| 4.CB.35 | Vestaite | (Ti4+Fe2+)Ti4+3O9 |
| 4.CB.35 | Olkhonskite | (Cr,V)2Ti3O9 |
| 4.CB.35 | Schreyerite | V3+2Ti4+3O9 |
| 4.CB.40 | Zincorinmanite-(Zn) | Zn2Sb2(Fe3+4Zn2)O14(OH)2 |
| 4.CB.40 | Majindeite | Mg2Mo3O8 |
| 4.CB.40 | Almagreraite | CuZnMn4+3O8 |
| 4.CB.40 | Kamiokite | Fe2Mo3O8 |
| 4.CB.40 | Nolanite | V3+8Fe3+2O14(OH)2 |
| 4.CB.40 | Iseite | Mn2Mo3O8 |
| 4.CB.40 | Rinmanite | Zn2Sb2Mg2Fe4O14(OH)2 |
| 4.CB.45 | Stibioclaudetite | AsSbO3 |
| 4.CB.45 | Claudetite | As2O3 |
| 4.CB.50 | Senarmontite | Sb2O3 |
| 4.CB.50 | Arsenolite | As2O3 |
| 4.CB.55 | Valentinite | Sb2O3 |
| 4.CB.60 | Bismite | Bi2O3 |
| 4.CB.65 | Sphaerobismoite | Bi2O3 |
| 4.CB.70 | Sillénite | Bi12SiO20 |
| 4.CB.75 | Kyzylkumite | V3+Ti2O5(OH) |
| 4.CB.80 | 'Tietaiyangite' | Fe3+4Fe2+TiO9 |
| 4.CB.85 | Liuite | FeTiO3 |
| 4.CB.90 | Luogufengite | Fe2O3 |
| 4.CB.95 | Wangdaodeite | FeTiO3 |
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 Pseudobrookite
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References for Pseudobrookite
Reference List:
Traube, Η. (1892) Ueber den Pseudobrookit vom Aranyer Berge in Siebenbürgen. Zeitschrift für Krystallographie, 20 (1). 327 doi:10.1524/zkri.1892.20.1.327
Pauling, Linus (1930) The crystal structure of pseudobrookite. Zeitschrift für Kristallographie, 73 (1). 97-112 doi:10.1524/zkri.1930.73.1.97
TAYLOR, R. W. (1963) Liquidus Temperatures in the System FeO-Fe2O3-TiO2. Journal of the American Ceramic Society, 46 (6). 276-279 doi:10.1111/j.1151-2916.1963.tb11726.x
Taylor, R. W. (1964) Phase equilibria in the system FeO-Fe2O3-TiO2 at 1300° C. American Mineralogist, 49 (7-8) 1016-1030
Åsbrink, Gudrun, Magnéli, Arne, Porok, J., Levstek, I., Eržen, V., Blinc, R., Paušak, S., Ehrenberg, L., Dumanović, J. (1967) X-Ray Studies on Some Mixed Oxide Systems of the Pseudobrookite Structure. Acta Chemica Scandinavica, 21. 1977 doi:10.3891/acta.chem.scand.21-1977
Hauck, J. (1981) Crystallography and phase relations of MeO-M2O3-TiO2 systems (Me = Fe, Mg, Ni; M = Al, Cr, Fe). Journal of Solid State Chemistry, 36. 52-65 doi:10.1016/0022-4596(81)90191-2
Bowles, John F. W. (1988) Definition and range of composition of naturally occurring minerals with the pseudobrookite structure. American Mineralogist, 73 (11-12) 1377-1383
Teller, Raymond G., Antonio, Mark R., Grau, Alphonso E., Gueguin, Michel, Kostiner, Edward (1990) Structural analysis of metastable pseudobrookite ferrous titanium oxides with neutron diffraction and Mossbauer spectroscopy. Journal of Solid State Chemistry, 88. 334-350 doi:10.1016/0022-4596(90)90229-q
Teller, Raymond G., Antonio, Mark R., Grau, Alphonso E., Gueguin, Michel, Kostiner, Edward (1990) The chemistry of the thermal decomposition of pseudobrookite ferrous titanium oxides. Journal of Solid State Chemistry, 88. 351-367 doi:10.1016/0022-4596(90)90230-u
Localities for Pseudobrookite
Showing 226 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.
Algeria | |
| Lorand et al. (1987) |
Australia | |
| W. D. Birch et al (in press) |
| Museum Victoria Mineralogy Collection | |
| Museum Victoria Mineralogy Collection | |
| U. Kolitsch (SXRD) +1 other reference |
Austria | |
| Schebesta (1983) +2 other references |
| Exel (1993) |
| Postl et al. (1996) |
| Postl et al. (1996) +1 other reference |
| Exel (1993) |
Brazil | |
| Geological Survey Professional Paper 327 (U.S. Department of the Interior, 1959) |
Bulgaria | |
| Singer et al. (2008) |
Canada | |
| Richard Gunter Collection |
Chile | |
| "Estudios geológico del sector de ... +2 other references |
China | |
| [var: Chromium-bearing Kennedyite] Lei Zhao (1991) |
Czech Republic | |
| Scharm +7 other references |
| Novák et al. (2007) |
Denmark | |
| Pedersen et al. (1975) +1 other reference | |
Finland | |
| Karinen |
France | |
| Fermis (2023) |
| Barrier D et al. (2004) |
| P & E Médard collection |
| Philippe Rémy collection |
| A. Lacroix (1905) +1 other reference |
| Queneau (n.d.) |
| Hède | |
| Vernay (1996) |
| Mboungou-Kongo (2002) | |
| COUREAU |
| Ionov et al. (1995) |
| Ł. Kruszewski EPMA/PXRD/Rietveld data +1 other reference |
| photo and collection Bernard Bouissac |
| Ko Jansen collection |
Germany | |
| Stähle et al. (2003) |
| Stähle et al. (2002) | |
| Dill (2009) |
| Collection of Walter Göttler |
| Belendorff (2005) |
| Bender et al. (1994) |
| Blaß et al. (1995) |
| International Association of Collectors of Slag Minerals (3) | |
| Blaß et al. (1995) |
| Brauns (1922) |
| Hentschel (1983) +1 other reference |
| Hentschel (1975) +1 other reference |
| Weiß (1990) |
| Weiß (1990) |
| Weiß (1990) | |
| Personally collected by Günter Frenz | |
| Rondorf et al. (1988) +1 other reference | |
| Hentschel (1975) |
| Blaß et al. (2003) |
| |
| collection C.&H. Schäfer | |
| Brauns (1922) |
| Leu (2017) | |
| Hentschel (1975) |
| Hentschel (1983) | |
| www.mindat.org (n.d.) |
| Hentschel (1983) |
| Weiß (1990) |
| Hentschel (1987) |
| Hentschel (1987) |
| Weiß (1990) |
| Schäfer (1979) |
| Guth (2000) | |
| Weiß (1990) |
| Blaß et al. (2012) |
| Hentschel (1993) |
| Hentschel (1987) |
| Collection of Bernd Ternes. |
| Hentschel (1987) |
| Hentschel (1987) |
| Hentschel (1987) |
| Schüller (1990) |
| Witzke et al. (1998) |
| Schüller (1953) |
Greece | |
| |
| ... |
Hungary | |
| |
Indian Ocean | |
| Maciąg et al. (2019) | |
Israel | |
| Britvin et al. (2021) +1 other reference |
| Krüger et al. (2021) |
Italy | |
| Wagner et al. (1985) |
| Mondillo N. et al. (2011) |
| Russo et al. (2011) |
| Russo et al. (2004) | |
| Matteo Chinellato collection | |
| Imma Punzo find and collection |
| Russo et al. (2004) |
| Burli et al. (2010) |
| Bortolozzi (n.d.) | |
| Parodi et al. (1989) | |
| Signoretti et al. (2004) +1 other reference | |
| Conti-Vecchi et al. (1991) |
| Bortolozi G. (1986) | |
| Bortolozzi (n.d.) |
| Bortolozzi (n.d.) |
| Gianfagna et al. (2001) +2 other references |
| Bortolozzi (n.d.) |
| Boscardin et al. (2011) |
| Daleffe et al. (2000) |
| M. Boscardin (2002) | |
Japan | |
| Nakajima et al. (2006) |
Kazakhstan | |
| Akhmetova et al. (2025) |
Madagascar | |
| Berger et al. (2014) |
Mauritius | |
| Favreau (n.d.) |
Mexico | |
| Panczner (1987) |
| "Rock-magnetism and ore microscopy of ... |
| Panczner (1987) |
Mongolia | |
| Peretyazhko et al. (2024) |
New Zealand | |
| Martin Stolworthy Collection |
| Essence of Microscope |
| Challis et al. (1995) +1 other reference |
| Collection of RJ Martin correlated to ... |
| Collection of RJ Martin |
| Collection of RJ Martin correlated to ... |
Nigeria | |
| Sakoma et al. (2002) |
Norway | |
| Brøgger (1888) +1 other reference |
Oman | |
| Zhang et al. (2015) |
Poland | |
| [var: Chromium-bearing Kennedyite] Kruszewski et al. (Lower Silesian Coal Basin) |
Portugal | |
| Sturla et al. (2020) |
| Sturla et al. (2020) |
| Alves (n.d.) |
| Alves (n.d.) |
Romania | |
| Udubasa et al. (2011) |
| Szakáll et al. (2010) |
| Koch +3 other references |
Russia | |
| Doroshkevich et al. (2007) |
| Cesnokov et al. (1998) |
| Kaigorodova (2017) |
| doi.org (n.d.) +4 other references |
| Pekov et al. (2012) | |
| |
| Ishiwatari et al. (2004) |
| Victor V. Sharygin analytycal data (2012) |
Serbia | |
| Kostić +3 other references |
Slovakia | |
| Ďuďa |
South Africa | |
| Cairncross et al. (1995) |
Spain | |
| B. Azambre et al. +1 other reference |
| B. Azambre et al. +1 other reference |
| Personally collected in January 2013 +1 other reference |
| Sauro et al. (2021) +2 other references |
| B. Azambre et al. +1 other reference |
| Salvioli-Mariani et al. (1996) |
| Calvo Rebollar et al. (2022) |
| Brigatti et al. (1993) +1 other reference |
| Nobel +11 other references |
| Lewis (1883) | |
Taiwan | |
| Chen et al. (2003) +1 other reference |
Tanzania | |
| McKie (1963) |
UK | |
| Agrell et al. (1958) +1 other reference |
| J.Ralph 2007 |
| Smith (1965) +1 other reference | |
Ukraine | |
| Spiridonov et al. (2019) |
USA | |
| |
| Anthony et al. (1995) |
| Dr. Robert Housley |
| Anthony et al. (1995) |
| Data provided by Janet Clifford |
| White (1992) |
| White (1992) +1 other reference |
| George C. Branner (1927) |
| U.S. Borax |
| R. Housley |
| MarekC |
| DeVito (1992) |
| USGS Bull 1716C +1 other reference |
| Eckel et al. (1997) |
| Eckel et al. (1997) |
| AmMin 84:754-763 |
| Johnston et al. (1984) |
| [var: Kennedyite] Johnston et al. (1985) | |
| Velde (1975) +1 other reference |
| Fries +1 other reference |
| USGS Bulletin 931-1 +1 other reference | |
| Walstrom (n.d.) |
| Tony Nikischer specimen |
| Rice et al. (1971) |
| Northrop et al. (1996) |
| NMGS 37th Field Conference |
| - (1989) | |
| Northrop et al. (1996) |
| Ronald Gibbs | |
| Jerry Cone Collection |
| Maxwell et al. (1986) | |
| Henderson (1985) | |
| Steve Stuart collection- from giveaway ... |
| Northrop et al. (1996) | |
| Northrop et al. (1996) | |
| Gibbs (2013) | |
| New Mexico rocks & minerals: the collecting guide (including maps) +2 other references |
| Northrop et al. (1996) |
| Northrop et al. (1996) | |
| DeMark (1989) +1 other reference | |
| Ramon DeMark and Jessie Kline |
| NMBMMR New Mexico Mineral symposium (2000) | |
| K. Starnes |
| Henderson (1985) | |
| Don Howard and Kent England Micro Probe ... | |
| Kleck (1970) |
| Ream (1979) |
| Nassau et al. (1968) | |
| |
| Foord et al. (1995) | |
| Collected by Joe Marty | |
| Microprobe 7:9 pp 12-14 |
| Ream (1979) +1 other reference | |
| Grüll (2014) | |
| Personally Collected by Dr. Scott ... | |
| Rick Dalrymple Collection | |
| Collected by and in the collection of ... | |
| Palache (1934) +1 other reference | |
| Holfert et al. (1996) | |
| Personally Collected by Dr. Scott ... |
| Steve Rust collection |
| Mineralogical Magazine 1998 62 : 265-269 | |
| Buchholz et al. (2007) |
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Uroi Hill, Simeria, Hunedoara County, Romania