Thermodynamics of FeS-PbS-In2S3 and Properties of Intermediate Phases

Article Preview

Abstract:

The thermodynamic analysis and the X-ray Phase Analysis (XPA) of the FeS–PbS–In2S3 system were carried out. It is shown that along with the triple phases of MIn2S4 (M – Fe, Pb) and Pb6In6S21, the Fe1.5Pb5.5In10S22 phase also participates in the triangulation of the system. The standard thermodynamic functions for the formation of MIn2S4 (M-Fe, Pb), Pb6In6S21 and Fe1.5Pb5.5In10S22 are estimated. An isothermal section of the FeS–PbS–In2S3 system at 298 K is constructed. It is shown that the activation energy of the impurity level located in the band gap of Fe1.5Pb5.5In10S22 is equal to 0.19 eV.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

175-181

Citation:

Online since:

July 2018

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2018 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] T.G. Aminov, G.G. Shabunina, E.V. Busheva, V.M. Novotortsev, Magnetic properties of Co x (Cu0.5In0.5)1–x Cr2S4 solid solutions, Russ. J. Inorg. Chem. 61 (2016) 461-467.

DOI: 10.1134/s0036023616040033

Google Scholar

[2] T.G. Aminov, G.G. Shabunina, E.V. Busheva, V.M. Novotortsev, Magnetic Diagram of CuCr2-xSbxSe4 Solid Solutions, Russ. J. Inorg. Chem. 62 (2017) 361-371.

DOI: 10.1134/s0036023617030020

Google Scholar

[3] S.V. Trukhanov, I.V. Bodnar, M.A. Zhafar, Magnetic and electrical properties of (FeIn2S4)1−x (CuIn5S8)x solid solutions, J. Magn. Magn. Mater. 379 (2015) 22-27.

DOI: 10.1016/j.jmmm.2014.10.120

Google Scholar

[4] T.G. Aminov, G.G. Shabunina, V.M. Novotortsev, Spin glasses in solid solutions of CdCr.

Google Scholar

[4] ZnCr.

Google Scholar

[4] Russ. J. Inorg. Chem. 59 (2017) 647-657.

Google Scholar

[5] I.V. Bodnar, Yu.A. Fedotova, M.A. Novikova, Growth and research by methods of X-ray diffraction and JAG-spectroscopy of crystals of solid solutions of the system FeIn2S4-In2S3, Inorg. Mater. 47 (2011) 116-120.

DOI: 10.1134/s0020168511020026

Google Scholar

[6] T. Tomita, Y. Nambu, S. Nakatsuji, S. Koeda, M. Hedo, Y. Uwatoko, Pressure dependence of electrical transport in the triangular antiferromagnetic insulators FeGa2S4 and Fe2Ga2S5, J. Phys. Soc. Jpn. 78 (2009) 094603-4.

DOI: 10.1143/jpsj.78.094603

Google Scholar

[7] S. Nakatsuji, H. Tonomura, K. Onuma, Y. Nambu, O. Sakai, Y. Maeno, R.T. Macaluso, J.Y. Chan, Spin Disorder and Order in Quasi-2D Triangular Heisenberg Antiferromagnets: Comparative Study of FeGa2S4, Fe2Ga2S5, and NiGa2S4, Phys. Rev. Lett. 99 (2007).

Google Scholar

[8] I.V. Bodnar, S.A. Pavlyukovets, V.Yu. Rud, Yu.V. Rud, Growing FeIn2S4 single crystals and fabrication of photosensitive structures on their basis, Semiconductors. 43 (2009) 1510-1513.

DOI: 10.1134/s1063782609110190

Google Scholar

[9] Y. Matsushita, Y. Ueda, Structure and Physical Properties of 1D Magnetic Chalcogenide, Jamesonite (FePb4Sb6S14), Inorg. Chem. 42 (2003) 7830-7838.

DOI: 10.1021/ic034634t

Google Scholar

[10] P. Leone, L.M. Le Leuch, P. Palvadeau, P. Molinie, Y. Moelo, Single crystal structures and magnetic properties of two iron or manganese-lead-antimony sulfides: MPb4Sb6S14 (M: Fe, Mn) Loclaity: synthetic, Solid State Sci. 5 (2003) 771-776.

DOI: 10.1002/chin.200334009

Google Scholar

[11] P. Leone, G. Andre, C. Doussier, Y. Moëlo, Neutron diffraction study of the magnetic ordering of jamesonite FePb4Sb6S14, Magn. Magn. Mater. 284 (2004) 92-96.

DOI: 10.1016/j.jmmm.2004.06.031

Google Scholar

[12] Y. Matsushita, Y. Ueda, Crystal Structure and Physical Properties of Fe1.5Pb5.5In10S22, Inorg. Chem. 45 (2006) 2022-(2026).

Google Scholar

[13] J. E. Dutrizac, The Fe1-xS–PbS–ZnS phase System, Can. J. Chem. 58 (1980) 739-741.

Google Scholar

[14] H. Eric, M. Timucin, Activities in Cu2S–FeS–PbS melts at 1200°C, Metall. Mater. Trans. B. 12B (1981) 493-500.

DOI: 10.1007/bf02654319

Google Scholar

[15] K. Koike, H. Watanabe, S. Tanaka, Thermodynamic Studies of the Molten FeS–PbS and Cu2S–PbS Systems, J. Soc. Mater. Engin. Res. Japan. 5 (1992) 21-28.

DOI: 10.5188/jsmerj.5.2_21

Google Scholar

[16] V. Kramer, K. Berroth, Phase investigations in the system PbS–In2S3 and the crystal structures of PbIn2S4 and Pb6In10S21, Mat. Res. Bull. 15. (1980) 299-308.

DOI: 10.1016/0025-5408(80)90173-7

Google Scholar

[17] P.G. Rustamov, P.K. Babaeva, M.R. Allazov, Phase Diagram of FeS–In–In2S3 Section, Zh. Neorg. Khim. 24 (1979) 2208-2211. (in Russian).

Google Scholar

[18] M. Womes, J. Olivier-Fourcade, J-C. Jumas, F. Aubertin, U. Gonser, Characterization of the Single Phase Region with Spinel Structure in the Ternary System In2S3–FeS–FeS2, J. Solid State Chem. 97 (1992) 249-256.

DOI: 10.1016/0022-4596(92)90032-q

Google Scholar

[19] M.M. Asadov, S.N. Mustafaeva, E.M. Kerimova, N.Z. Gasanov, Dielectric and Optical Properties of TlGa1-xErxS2 (x = 0, 0.001, 0.005, 0.01) Single Crystals, Inorg. Mater. 49. (2013) 1175-1179.

DOI: 10.1134/s0020168513120121

Google Scholar

[20] M.M. Asadov, S.N. Mustafaeva, A.N. Mamedov, M.A. Aljanov, E.M. Kerimova, M.D. Nadjafzade, Dielectric Properties and Heat Capacity of (TlInSe2)1-x(TlGaTe2)x Solid Solutions, Inorg. Mater. 51 (2015) 772-778.

DOI: 10.1134/s0020168515080051

Google Scholar

[21] N.Kh. Abrikosov, V.F. Bankina, L.V. Poretskaya, L.E. Shelimova, Semiconducting II-VI, IV-VI, and V-VI Compounds, Plenum, New York. (1969).

DOI: 10.1007/978-1-4899-6373-4

Google Scholar

[22] M.G. Kanatzidis, The Role of Solid State Chemistry in the Discovery of New Thermoelectric Materials, in Semiconductors and Semimetals, Ed., M.T. Tritt, Acad. Press, San Diego, San Francisco, New York, Boston, London, Sydney, Tokyo. 69 (2001).

DOI: 10.1016/s0080-8784(01)80149-6

Google Scholar

[23] O. Kubaschewski, C.B. Alcock, Metallurgical Thermochemistry, 5th ed., Pergamon Press, Oxford, New York. Toronto. (1979).

Google Scholar

[24] I. Barin, Thermochemical Data of Pure Substances, third ed., VCH, New York, (1995).

Google Scholar

[25] V.P. Glushko Thermal constants of substances. Database. URL: http://www.chem.msu.su/cgi-bin/tkv.pl?show=welcome.html.

Google Scholar

[26] V.T. Maltsev, S.A. Kutolin, Calculation of Gibbs energy and the enthalpy of formation of compounds in binary and ternary oxide systems, Zhur. Neorgan. Khim. (Russ. J. Inorg. Chem.) 24 (1979) 12-19. (in Russian).

Google Scholar

[27] M.M. Asadov, N.A. Akhmedova, Fusion Diagrams in the BiBO3–YbBO3 and Bi4B2O9–YbBO3 Systems, Int. J. Thermophys. 35 (2014) 1749-1756. DOI 10.1007/s10765-014-1673-6.

Google Scholar

[28] A.M. Zakharov, Diagrammy sostoyaniya dvoynykh i troynykh system, Diagrams of the State of Binary and Ternary Systems, third ed., Metallurgy, Moscow, 1990. (in Russian).

Google Scholar