Hostname: page-component-848d4c4894-hfldf Total loading time: 0 Render date: 2024-05-14T04:23:03.490Z Has data issue: false hasContentIssue false

Belomarinaite KNa(SO4): A new sulfate from 2012–2013 Tolbachik Fissure eruption, Kamchatka Peninsula, Russia

Published online by Cambridge University Press:  21 January 2019

Stanislav K. Filatov*
Affiliation:
Institute of Earth Sciences, Saint Petersburg State University, University Emb. 7/9., 199034, Saint- Petersburg, Russia
Andrey P. Shablinskii
Affiliation:
Institute of Earth Sciences, Saint Petersburg State University, University Emb. 7/9., 199034, Saint- Petersburg, Russia Institute of Silicate Chemistry of the Russian Academy of Sciences, Makarova Emb. 2., 199034, Saint- Petersburg, Russia
Lidiya P. Vergasova
Affiliation:
Institute of Volcanology and Seismology, Far Eastern Branch of the Russian Academy of Sciences, Piip Boulevard 9, 683006, Russian Academy of Sciences, Petropavlovsk-Kamchatsky, Russia
Olga U. Saprikina
Affiliation:
Institute of Earth Sciences, Saint Petersburg State University, University Emb. 7/9., 199034, Saint- Petersburg, Russia Institute of Silicate Chemistry of the Russian Academy of Sciences, Makarova Emb. 2., 199034, Saint- Petersburg, Russia
Rimma S. Bubnova
Affiliation:
Institute of Earth Sciences, Saint Petersburg State University, University Emb. 7/9., 199034, Saint- Petersburg, Russia Institute of Silicate Chemistry of the Russian Academy of Sciences, Makarova Emb. 2., 199034, Saint- Petersburg, Russia
Svetlana V. Moskaleva
Affiliation:
Institute of Volcanology and Seismology, Far Eastern Branch of the Russian Academy of Sciences, Piip Boulevard 9, 683006, Russian Academy of Sciences, Petropavlovsk-Kamchatsky, Russia
Alexander B. Belousov
Affiliation:
Institute of Volcanology and Seismology, Far Eastern Branch of the Russian Academy of Sciences, Piip Boulevard 9, 683006, Russian Academy of Sciences, Petropavlovsk-Kamchatsky, Russia
*
*Author for correspondence: Stanislav K. Filatov, Email: filatov.stanislav@gmail.com

Abstract

Belomarinaite, ideally KNaSO4, is a new sulfate mineral discovered in the Toludskoe lava field, formed during the 2012–2013 Tolbachik Fissure eruption. The mineral occurs as arborescent aggregates of tabular crystals (1 mm × 0.3 mm × 0.1 mm) comprising hematite impurities. The average size of the aggregates is 0.5–0.7 mm. The empirical formula is (K0.95Na0.92Cu0.04)Σ1.91S1.01O4. The crystal structure of belomarinaite was determined using single-crystal X-ray diffraction data; the space group is P3m1, a = 5.6072(3), c = 7.1781(4) Å, V = 195.45(2) Å3, Z = 2 and R1 = 2.6%. In the crystal structure of belomarinaite, there are six cation sites: the [4]S1 and [4]S2 sites are occupied by S, the [6]Na and [12]K sites are occupied by Na and K, respectively, giving Na0.5K0.5 apfu and the [10]M1 and [10]M2 sites are occupied by Na0.78K0.22 and K0.78Na0.22 apfu, respectively. The crystal structure is a framework of SO4 tetrahedra, Na octahedra and K, M1 and M2 polyhedra. Belomarinaite is isostructural with the synthetic compound KNaSO4. In belomarinaite, Na and K are disordered over M1 and M2 sites; in its synthetic analogue, Na and K are ordered over M1 and M2 sites, respectively. The Mohs’ hardness is 2–3. The mineral is uniaxial (+), with ω = 1.485(3) and ε = 1.488(3) (λ = 589 nm). The strongest lines of the powder X-ray diffraction pattern [d, Å (I, %) (hkl)] are: 4.022(31)(101); 3.591(26)(002); 2.884(74)(102); 2.800(100)(110); 2.391(16)(003); 2.296(8)201; 2.008(38)(022); and 1.634(10)(212). The mineral was named in honour of Russian volcanologist Marina Gennadievna Belousova (b. 1960) for her significant contributions to the monitoring of the Tolbachik Fissure eruption.

Type
Article
Copyright
Copyright © Mineralogical Society of Great Britain and Ireland 2019 

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

Footnotes

Associate Editor: David Hibbs

References

Baur, W.H. (1974) The geometry of polyhedral distortions. Predictive relationships for the phosphate group. Acta Crystallographica, B30, 11951215.Google Scholar
Belousov, A.B., Belousova, M.G., Edwards, B., Volynets, A.O. and Melnikov, D.V. (2015) Overview of the precursors and dynamics of the 2012–13 basaltic fissure eruption of Tolbachik Volcano, Kamchatka, Russia. Journal of Volcanology and Geothermal Research, 307, 2237.Google Scholar
Chukanov, N.V., Aksenov, S.M., Rastsvetaeva, R.K., Pekov, I.V., Belakovskiy, D.I. and Britvin, S.N. (2015) Möhnite, (NH4)K2Na(SO4)2, a new guano mineral from Pabellón de Pica, Chile. Mineralogy and Petrology, 109, 643648.Google Scholar
Egorov-Tismenko, Yu.K., Sokolova, E.V., Smirnova, N.L. and Yamnova, N.A. (1984) Crystal chemical features of minerals related to the glaserite structure type. Mineralogicheskii Zhurnal, 6, 39 [in Russian].Google Scholar
Eysel, W. (1973) Crystal chemistry of the system Na2SO4–K2SO4–K2CrO4–Na2CrO4 and of the glaserite phase. American Mineralogist, 58, 736747.Google Scholar
Filatov, S.K., Shablinskii, A.P., Vergasova, L.P., Saprikina, O.Y., Bubnova, R.S., Moskaleva, S.V. and Belousov, A.B. (2018) Belomarinaite, IMA 2017-069a. CNMNC Newsletter No. 43, June 2018, page 781; Mineralogical Magazine, 82, 779785.Google Scholar
Fischmeister, H.F. (1962) Röntgenjristallugraphische Ausdehnungsmessungen an einigen Alkalisulfaten. Monatshefte für Chemie, 93, 420434.Google Scholar
Gorelova, L.A., Vergasova, L.P., Krivovichev, S.V., Avdontseva, E.Y., Moskaleva, S.V., Karpov, G.A. and Filatov, S.K. (2016) Bubnovaite, K2Na8Ca(SO4)6, a new mineral species with modukar structure from the Tolbachic volcano, Kamchatka peninsula, Russia. European Journal of Mineralogy, 28, 677686.Google Scholar
Hawthorne, F.C., Krivovichev, S.V. and Burns, P.C. (2000) The crystal chemistry of sulphate minerals. Pp. 1–112 in: Sulfate Minerals: Crystallography, Geochemistry, and Environmental Significance (Alpers, C.N. Jambor, J.L. and Nordstrom, D.K., editors). Reviews in Mineralogy and Geochemistry, 40. Mineralogical Society of America and the Geochemical Society, Chantilly, Virginia, USA.Google Scholar
International Tables for Crystallography (2006) Volume C, Mathematical, Physical and Chemical Tables, ch. 9.4, p. 778; ch. 9.8, p. 907, doi:10.1107/97809553602060000103Google Scholar
Kato, K. and Saalfeld, H. (1972) The crystal structure of hansakite, KNa22(Cl(CO3)2(SO4)9) and its relation to the K2SO4 I structure type. Acta Crystallographica, B28, 36143617.Google Scholar
Krivovichev, S.V., Hawthorne, F.C. and Williams, P.A. (2017) Structural complexity and crystallization: the Ostwald sequence of phases in the Cu2(OH)3Cl system (botallackite–atacamite–clinoatacamite). Structural Chemistry, 28, 153159.Google Scholar
Mandarino, J.R. (1981) The Gladstone-Dale relationship: Part IV. The compatibility concept and its application. The Canadian Mineralogist, 19, 441450.Google Scholar
Miyake, M., Morikawa, H. and Iwai, S.I. (1980) Structure reinvestigation of the high-temperature form of K2SO4. Acta Crystallographica, B36, 532536.Google Scholar
Moore, P.B. (1973) Bracelets and pinwheels: A topological-geometrical approach to the calcium orthosilicate and alkali sulphate structures. American Mineralogist, 58, 3242.Google Scholar
Moore, P.B. (1976) The glaserite, K3Na[SO]4, structure type as a ‘super’ dense-packed oxide: Evidence for icosahedral geometry and cation-anion mixed layer packings. Neues Jahrbuch für Mineralogie – Abhandlungen, 127, 187196.Google Scholar
Moore, P.B. (1981) Complex crystal structures related to glaserite, K3Na(SO4)2: Evidence for very dense packing among oxysalts. Bulletin de Mineralogie, 104, 536547.Google Scholar
Okada, K. and Ossaka, J. (1980) Structures of potassium sodium sulphate and tripotassium sodium disulphate. Acta Crystallographica, B36, 919921.Google Scholar
Ostwald, W. (1897) Studien über die Bildung und Umwandlung fester Körper. 1. Abhandlung: Übersättigung und Überkaltung. Zeitschrift für Physikalische Chemie, 22, 289330.Google Scholar
Pekov, I.V., Zubkova, N.V., Zolotarev, A.A., Yapaskurt, V.O., Krivovichev, S.V., Belakovskiy, D.I., Lykova, I.S., Vigasina, M.F., Kasatkin, A.V., Sidorov, E.G. and Pushcharovsky, D.Y. (2016) CNMNC Newsletter No 30 April 2016 page 409. Mineralogical Magazine 80, 407413.Google Scholar
Petříček, V., Dusek, M. and Palatinus, L. (2006) Jana2006. The Crystallographic Computing System. Institute of Physics, Academy of Sciences of the Czech Republic, Prague.Google Scholar
Volkov, S.N., Filatov, S.K., Bubnova, R.S., Ugolkov, V.L., Svetlyakova, T.N. and Kokh, A.E. (2012) Thermal expansion and order–disorder polymorphic transformation in the family of borates BaNaMe(BO3)2, Me = Sc,Y. Glass Physics and Chemistry, 38, 162171.Google Scholar
Supplementary material: File

Filatov et al. supplementary material

Filatov et al. supplementary material 1

Download Filatov et al. supplementary material(File)
File 17.1 KB