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Chenowethite, rare Mg-uranyl -sulphate, from the Jáchymov ore district, Krušné hory Mountains (Czech Republic) - description and Raman spectroscopy


DOI: https://doi.org/10.46861/bmp.32.037

Keywords

Abstract

We studied a rare magnesium uranyl sulphate mineral, chenowethite, from the Jáchymov ore district, Krušné hory Mountains (Czech Republic). It was confirmed from the two samples originating from the Svornost mine in Jáchymov. Chenowethite forms rich crystalline aggregates on supergene-altered rocks in association with dark yellow to orange mineral of the zippeite group and white acicular crystals of gypsum. Its randomly arranged aggregates are composed of elongated thin tabular crystals up to 100 μm in length. Chenowethite is pale or bright yellow with a pale yellow streak and fluoresces greenish yellow, weak or dull under 254 nm and 366 nm UV-radiation, respectively. Chenowethite crystals are transparent to translucent and have an intensive vitreous luster. It is very brittle, and at least one system of perfect cleavage (along {010}) was observed. The quantitative chemical analyses of chenowethite agree well with the proposed ideal composition and correspond to the following empirical formulae (on the basis of 2 U atoms pfu) (Mg1.02Fe0.03Mn0.03)Σ1.08[(UO2)2(SO4)2.06 (OH)2.04]·11H2O (sample A) and (Mg0.92Fe0.11Mn0.04Zn0.01)Σ1.08[(UO2)2(SO4)1.96(SiO4)0.01(OH)2.23]·11H2O (sample B). Chenowethite is orthorhombic, the space group Cmcm, with the unit-cell parameters refined from X-ray powder diffraction data: a 6.9329(8), b 19.0019(15), c 16.3298(15) Å and V 2151.2(3) Å3 (sample A) and a 6.937(3), b 19.019(5), c 16.348(6) Å and V 2156.8(1.1) Å3 (sample B). Vibrational (Raman and infrared) spectroscopy documents the presence of molecular water, uranyl and sulphate units in the crystal structure of chenowethite.

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References

References

Bartlett JR, Cooney RP (1989) On the determination of uranium-oxygen bond lengths in dioxouranium(VI) compounds by Raman spectroscopy. J Mol Struct 193: 295-300. https://doi.org/10.1016/0022-2860(89)80140-1

Brugger J, Burns PC, Meisser N (2003) Contribution to the mineralogy of acid drainage of uranium minerals: marécottite and the zippeite group. Am Mineral 88: 676-685. https://doi.org/10.2138/am-2003-0421

Bullock H, Parret FW (1970) The low frequency infrared and Raman spectroscopic studies of some uranyl complexes: the deformation frequency of the uranyl ion. Can J Chem 48: 3095-3097. https://doi.org/10.1139/v70-520

Burnham Ch W (1962) Lattice constant refinement. Carnegie Inst Washington Year Book 61: 132-135

Čejka J (1999) Infrared spectroscopy and thermal analysis of the uranyl minerals. Rev Mineral 38: 521-622

Fernandes HM, Veiga LHS, Franklin MR, Prado VCS, Taddei JF (1995) Environmental impact assessment of uranium mining and milling facilities; a study case at the Poços de Caldas uranium mining and milling site, Brazil. J Geochem Explor 52(1-2): 161-173. https://doi.org/10.1016/0375-6742(94)00043-b

Finch RJ, Murakami T (1999) Systematics and paragenesis of uranium minerals. Rev Mineral 38: 91-180. https://doi.org/10.1515/9781501509193-008

Hloušek J, Plášil J, Sejkora J, Škácha P (2014) News and new minerals from Jáchymov, Czech Republic (2003 - 2014). Bull mineral-petrolog Odd Nár Muz (Praha) 22: 155-181

Kampf AR, Plášil J, Olds TA, Nash BP, Marty J (2018) Ammoniozippeite, a new uranyl sulfate mineral from the Blue Lizard Mine, San Juan County, Utah, and the Burro Mine, San Miguel County, Colorado, USA. Can Mineral 56: 235-245. https://doi.org/10.3749/canmin.1800002

Kampf AR, Plášil J, Olds TA, Ma C, Marty J (2022) Chenowethite, Mg(H2O)6[(UO2)2(SO4)2(OH)2]·5H2O, a new mineral with uranyl-sulfate sheets from Red Canyon, Utah, USA. Minerals, 12(12): 1594. https://doi.org/10.3390/min12121594

Krivovichev SV, Plášil J (2013) Mineralogy and crystallography of uranium. In: Burns PC, Sigmon GE (eds) Uranium: From Cradle to Grave. Mineralogical Association of Canada Short Courses 43: 15-119

Libowitzky E (1999) Correlation of O-H stretching frequencies and O-H···O hydrogen bond lengths in mi- nerals. Monat Chem 130: 1047-1059. https://doi.org/10.1007/bf03354882

Nakamoto K (2009) Infrared and Raman spectra of inorganic and coordination compounds Part A: Theory and applications in inorganic chemistry. John Wiley and Sons Inc. Hoboken, New Jersey. https://doi.org/10.1002/9780470405840

Ohwada K (1976) Infrared spectroscopic studies of some uranyl nitrate complexes. J Coord Chem 6: 75-80. https://doi.org/10.1080/00958977608079889

Ondruš P (1993) ZDS - A computer program for analysis of X-ray powder diffraction patterns. Materials Science Forum, 133-136, 297-300, EPDIC-2. Enchede. https://doi.org/10.4028/www.scientific.net/msf.133-136.297

Ondruš P, Veselovský F, Hloušek J, Skála R, Frýda J, Čejka J, Gabašová A (1997a) Secondary minerals of the Jáchymov (Joachimsthal) ore district. J Czech Geol Soc 42: 3-76

Ondruš P, Veselovský F, Skála R, Císařová I, Hloušek J, Frýda J, Vavřín I, Čejka J, Gabašová A (1997b) New naturally occurring phases of secondary origin from Jáchymov (Joachimsthal). J Czech Geol Soc 42: 77-107

Ondruš P, Veselovský F, Gabašová A, Drábek M, Dobeš P, Malý K, Hloušek J, Sejkora J (2003a) Ore-forming processes and mineral parageneses of the Jáchymov ore district. J Czech Geol Soc 48: 157-192 

Ondruš P, Veselovský F, Gabašová A, Hloušek J, Šrein V (2003b) Geology and hydrothermal vein system of the Jáchymov (Joachimsthal) ore district. J. Czech Geol. Soc. 48: 3-18 

Ondruš P, Veselovský F, Gabašová A, Hloušek J, Šrein V (2003c) Supplement to secondary and rock-forming minerals of the Jáchymov ore district. J Czech Geol Soc 48: 149-155

Ondruš P, Veselovský F, Gabašová A, Hloušek J, Šrein V, Vavřín I, Skála R, Sejkora J, Drábek M (2003d) Primary minerals of the Jáchymov ore district. J Czech Geol Soc 48: 19-147

Plášil J (2014) Oxidation-hydration weathering of uraninite: the current state-of-knowledge. J Geosci 59: 99-114. https://doi.org/10.3190/jgeosci.163

Plášil J, Buixaderas E, Čejka J, Sejkora J, Jehlička J, Novák M (2010) Raman spectroscopic study of the uranyl sulphate mineral zippeite: low wavenumber and U-O stretching regions. Anal Bioanal Chem 397: 2703-2715. https://doi.org/10.1007/s00216-010-3577-z

Plášil J, Sejkora J, Škoda R, Škácha P (2014) The recent weathering of uraninite from the Červená vein, Jáchymov (Czech Republic): a fingerprint of the primary mineralization geochemistry onto the alteration association. J Geosci 59: 223-253. https://doi.org/10.3190/jgeosci.171

Pouchou J, Pichoir F (1985) „PAP“ (jrz) procedure for improved quantitative microanalysis. In: Armstrong JT (ed): Microbeam Analysis: 104-106. San Francisco Press. San Francisco

Sejkora J, Dolníček Z, Plášil J (2023) Ammoniozippeite from the Jáchymov ore district, Krušné hory Mountains (Czech Republic) - description and Raman spectroscopy. Bull Mineral Petrolog 31(1): 1-9. https://doi.org/10.46861/bmp.31.001

Škácha P, Plášil J, Horák V (2019) Jáchymov: mineralogická perla Krušnohoří. Academia, Praha 682 pp.

Yvon K, Jeitschko W, Parthé E (1977) Lazy Pulverix, a computer program for calculation X-ray and neutron diffraction powder patterns. J Appl Cryst 10: 73-74. https://doi.org/10.1107/s0021889877012898