Journal of

GEOsciences

  (Formerly Journal of the Czech Geological Society)

Original paper

Anatoly V. Kasatkin, E Makovicky, Jakub Plášil, Radek Škoda, Nikita V. Chukanov, Sergey Y. Stepanov, Atali A. Agakhanov, Fabrizio Nestola

Gladkovskyite, MnTlAs3S6, a new thallium sulfosalt from the Vorontsovskoe gold deposit, Northern Urals, Russia

Journal of Geosciences, volume 64 (2019), issue 3, 207 - 218

DOI: http://doi.org/10.3190/jgeosci.290



Anastassakis E, Perry CH (1976) Light scattering and IR measurements in XS2 pyrite-type compounds. J Chem Phys 64: 3604-3609
http://doi.org/10.1063/1.432711

Balić-Žunić T, Makovicky E (1993) Contributions to the crystal chemistry of thallium sulphosalts. I. The O-D nature of imhofite. Neu Jb Mineral, Abh 165: 317-330

Biagioni C, Bindi L, Moëlo Y (2018) Another step toward the solution of the real structure of zinkenite. Z Kristallogr 233: 269-277
http://doi.org/10.1515/zkri-2017-2128

Cline JS, Stuart FM, Hofstra AH, Premo W, Riciputi L, Tosdal RM, Tretbar R (2003) Multiple sources of ore-fluid components at the Getchell Carlin-type gold deposit, Nevada, USA. In: Eliopoulos DG (ed) Mineral Exploration and Sustainable Development. Millpress, Rotterdam, pp 965-968

Cline JS, Hofstra AH, Muntean JL, Tosdal RM, Hickey KA (2005) Carlin-type gold deposits in Nevada - critical geological characteristics and viable models. Econ Geol 100: 371-405

Dickson FW, Radtke AS, Peterson JA (1979) Ellisite, Tl3AsS3, a new mineral from the Carlin gold deposit, Nevada, and associated sulfide and sulfosalt minerals. Amer Miner 64: 701-707

Divjaković V, Nowacki W (1976) Die Kristallstruktur von Imhofit, Tl5.6As15S25.3. Z Kristallogr 144: 323-333 (in German)
http://doi.org/10.1524/zkri.1976.144.1-6.323

Fershtater GB (2013) Paleozoic Intrusive Magmatism of Middle and South Urals. Ural Branch of the Russian Academy of Sciences, Yekaterinburg, pp 1-368 (in Russian)

Forneris R (1969) Infrared and Raman spectra of realgar and orpiment. Amer Miner 54: 1062-1074

Heerwig A, Ruck M (2009) Cu9Bi9S16Cl8 and Cu7.4Bi6Se12Cl7 Frameworks of Polyhedra with dichalcogenide bridges and mobile copper (I) cations. Z Anorg Allg Chem 635: 2162-2169
http://doi.org/10.1002/zaac.200900361

Hettmann K, Kreissig K, Rehkӓmper M, Wenzel T, Mertz-Kraus R, Markl G (2014) Thallium geochemistry in the metamorphic Lengenbach sulfide deposit, Switzerland: thallium-isotope fractionation in a sulfide melt. Amer Miner 99: 793-803
http://doi.org/10.2138/am.2014.4591

Hofmann BA, Knill MD (1996) Geochemistry and genesis of the Lengenbach Pb-Zn-As-Tl-Ba-mineralization, Binn Valley, Switzerland. Miner Depos 31: 319-339
http://doi.org/10.1007/BF02280795

Janković S, Jelenković R (1994) Thallium mineralization in the Allchar Sb-As-Tl-Au deposit. Neu Jb Mineral, Abh 167: 283-297

Johan Z, Mantienne J (2000) Thallium-rich mineralization at Jas Roux, Hautes-Alpes, France: a complex epithermal, sediment-hosted, ore-forming system. J Czech Geol Soc 45: 63-77
Direct link

Kasatkin AV, Nestola F, Agakhanov AA, Škoda R, Karpenko VY, Tsyganko MV, Plášil J (2018a) Vorontsovite, (Hg5Cu)Σ6TlAs4S12, and ferrovorontsovite, (Fe5Cu)Σ6TlAs4S12: the Tl- and Tl-Fe-analogues of galkhaite from the Vorontsovskoe gold deposit, Northern Urals, Russia. Minerals 8: 185
http://doi.org/10.3390/min8050185

Kasatkin AV, Makovicky E, Plášil J, Škoda R, Agakhanov AA, Karpenko VY, Nestola F (2018b) Tsygankoite, Mn8Tl8Hg2(Sb21Pb2Tl)Σ24S48, a new sulfosalt from the Vorontsovskoe gold deposit, Northern Urals, Russia. Minerals 8: 218
http://doi.org/10.3390/min8050218

Krӓmer V (1979) Structure of the bismuth chloride sulphide Bi4Cl2S5. Acta Cryst B35: 139-140
http://doi.org/10.1107/S0567740879002740

Krasnobaev AA, Fershtater GB, Bogomolov ES, Larionov AN, Berezhnaya NG (2007) Auerbakh Massif: zircons, age, polychronicity. 2006 Yearbook of the Institute of Geology and Geochemistry. Ural Branch of the Russian Academy of Sciences, Yekaterinburg, pp 191-196 (in Russian)

Kraus W, Nolze G (1996) POWDER CELL - a program for the representation and manipulation of crystal structures and calculation of the resulting X-ray powder patterns. J Appl Cryst 29: 301-303
http://doi.org/10.1107/S0021889895014920

Makovicky E (2018) Modular crystal chemistry of thallium sulfosalts. Minerals 8: 478
http://doi.org/10.3390/min8110478

Matsushita Y, Takéuchi Y (1994) Refinement of the crystal structure of hutchinsonite, TlPbAs5S9. Z Kristallogr 209: 475-478
http://doi.org/10.1524/zkri.1994.209.6.475

Minceva-Sukarova B, Jovanovski G, Makreski P, Soptrajanov B, Griffith W, Willis R, Grzetic I (2003) Vibrational spectra of MIMIIIS2 type synthetic minerals (MI = Tl or Ag and MIII = As or Sb). J Mol Struct 651-653: 181-189
http://doi.org/10.1016/S0022-2860(03)00105-4

Minina OV (1994) The Auerbakh Complex ore-magmatic system of the Middle Ural. Native Geology 7: 17-23

Morimoto N (1954) The crystal structure of orpiment (As2S3) refined. Mineral J 1: 160-169
http://doi.org/10.2465/minerj1953.1.160

Mullen DJE, Nowacki W (1972) Refinement of the crystal structures of realgar, AsS and orpiment, As2S3. Z Kristallogr 136: 48-65
http://doi.org/10.1524/zkri.1972.136.1-2.48

Murzin VV, Naumov EA, Azovskova OB, Varlamov DA, Rovnushkin MY, Pirajno E (2017) The Vorontsovskoe Au-Hg-As ore deposit (Northern Urals, Russia): geological setting, ore mineralogy, geochemistry, geochronology and genetic model. Ore Geol Rev 85: 271-298
http://doi.org/10.1016/j.oregeorev.2016.10.037

Petříček V, Dušek M, Palatinus L (2014) Crystallographic computing system Jana2006: general features. Z Kristallogr 229: 345-352
http://doi.org/10.1515/zkri-2014-1737

Poudeu PFP, Ruck M (2006) The intergrowth structure of Ag1.2Bi17.6S23Cl8 and its relation to the tubular structure of Bi6+δS6+3δCl6−3δ and the pavonite homologue Ag3xBi5−3xS8−6xCl6x−1. J Solid State Chem 179: 3636-3644
http://doi.org/10.1016/j.jssc.2006.07.034

Raber T, Roth P (2018) The Lengenbach quarry in Switzerland: classic locality for rare thallium sulfosalts. Minerals 8: 409
http://doi.org/10.3390/min8090409

Radtke AS (1985) Geology of the Carlin Ore Deposit, Nevada. USGS Professional Paper 1267: pp 1-124

Rigaku (2017) CrysAlis CCD and CrysAlis RED. Rigaku-Oxford Diffraction Ltd, Yarnton, Oxfordshire, UK

Sazonov VN, Murzin VV, Grigor’ev NA (1998) Vorontsovsk gold deposit: an example of Carlin-type mineralization in the Urals, Russia. Geol Ore Deposits 40: 139-151.

Sheldrick GM (2015) SHELXT - integrated space-group and crystal-structure determination. Acta Cryst A71: 3-8
http://doi.org/10.1107/S2053273314026370

Silitoe RH, Bonham HF (1990) Sediment-hosted gold deposits: distal products of magmatic-hydrothermal systems. Geology 18: 157-161
http://doi.org/10.1130/0091-7613(1990)018<0157:SHGDDP>2.3.CO;2

Stepanov SY, Sharpenok LN, Antonov AV (2017) Fluid-explosive breccias of the Vorontsovskoe gold deposit (the North Urals). Zap Ross Mineral Obsh 1: 59-70 (in Russian)

Tcheremisin AA, Zlotnik-Khotkevitch (1997) Vorontsovskoe gold deposit. Ores and Metals 1: 59-70 (in Russian)

Vikentyev IV, Tyukova EE, Murzin VV, Vikentyeva OV, Pavlov LG (2016) The Vorontsovsk Gold Deposit. Geology, Gold Modes, Genesis. Fort Dialog-Iset, Yekaterinburg, pp 1-204 (in Russian)

Volkov AV, Serafimovski T, Kochneva NT, Tomson IN, Tasev G (2006) The Alshar Epithermal Au-As-Sb-Tl deposit, Southern Macedonia. Geol Ore Deposits 48: 175-192
http://doi.org/10.1134/S1075701506030020

Journal of Geosciences, Published by © Czech Geological Society, with support from the Czech Geological Survey.
Webdesign inspired by aTeo. Hosted at the server of the Institute of Petrology and Structural Geology, Charles University, Prague.
ISSN: 1803-1943 (online), 1802-6222 (print)
email: jgeosci(at)jgeosci.org
cover_rotated.gif, 15kB

SNIP (Scopus, 2022): 0.826

IF (WoS, 2022): 1.4

5 YEAR IF (WoS, 2022): 1.8

Policy: Open Access

ISSN: 1802-6222

E-ISSN: 1803-1943