Reactions and speciation of technetium and rhenium in chloride melts: A spectroscopy study / Volkovich V.A., May I., Charnock J.M., Lewin B. // Physical Chemistry Chemical Physics. - 2002. - V. 4, l. 23. - P. 5753-5760.

ISSN:
14639076
Type:
Article
Abstract:
The reactions of rhenium metal, rhenium oxides ReO2 and ReO3) and technetium dioxide with chlorine and hydrogen chloride were investigated in LiCl-KCl, NaCl-CsCl and NaCl-KCl based melts between 450 and 720°C. Reaction progress was followed using in situ electronic absorption spectroscopy, with the spectra measured between 200 and 1100 nm. Samples of the quenched melts were analysed by EXAFS spectroscopy. Rhenium metal and rhenium oxides react with Cl2 or HCl yielding hexachlororhenate(IV) species, although the reaction of rhenium metal with HCl is extremely slow even at 700°C and no reaction between rhenium metal and Cl2 was observed below 500°C. Chlorination of technetium dioxide in molten salts has been studied here for the first time. TcO2 reacts with HCl producing [TcCl6]2-. However, the reaction of TcO2 with chlorine results in the oxidation of technetium to pertechnetate which is retained in the melt and production of a volatile solid, which is possibly a mixture of Tc(IV) chloride and Tc(VII) oxychloride. This is the first reported investigation into Tc speciation in molten salts.
Author keywords:
Index keywords:
cesium chloride; chloride; chlorine derivative; hydrochloric acid; lithium chloride; potassium chloride; rhenium; sodium chloride; technetium; volatile agent; absorption spectroscopy; analytic method;
DOI:
10.1039/b205978a
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Affiliations Centre for Radiochemistry Research, Department of Chemistry, The University of Manchester, Oxford Road, Manchester, M13 9PL, United Kingdom; CLRC Daresbury Laboratory, Warrington, WA4 4AD, United Kingdom; British Nuclear Fuels plc (BNFL), Research and Technology, Sellafield, Seascale, Cumbria, CA20 1PG, United Kingdom
References Denniss, I.S., Jeapes, A.P., (1996) The Nuclear Fuel Cycle, p. 116. , ed. P.D. Wilson, Oxford University Press, Oxford; Geilmann, W., Wrigge, F.W., Biltz, W., (1933) Angew. Chem., 46, p. 223; Geilmann, W., Wrigge, F.W., Biltz, W., (1933) Z. Anorg. Chem., 214, p. 244; Meyer, G., Irmler, M., (1986) J. Less-Common Met., 119, p. 31; Drobot, D.V., Pisarev, E.A., (1984) Zh. Neorg. Khim., 29, p. 2558; Irmler, M., Moeller, A., Meyer, G., (1991) Z. Anorg. Allg. Chem., 604, p. 7; Irmler, M., Meyer, G., (1991) Z. Anorg. Allg. Chem., 604, p. 17; Briscoe, H.V.A., Robinson, P.L., Stoddart, E.M., (1931) J. Chem. Soc., p. 2263; Geilmann, W., Wrigge, F.W., Biltz, W., (1932) Nachr. Ges. Wiss. Goettingen, p. 579; Colton, R., (1962) Nature, 194, p. 374; Wolf, C.J., Clifford, A.F., Johnston, W.H., (1957) J. Am. Chem. Soc., 79, p. 4257; Colton, R., (1962) Nature, 193, p. 872; Elder, M., Penfold, B.R., (1966) Inorg. Chem., 5, p. 1197; Guest, A., Lock, C.J.L., (1972) Can. J. Chem., 50, p. 1807; Fergusson, J.E., Hickford, J.H., (1970) Aust. J. Chem., 23, p. 453; Colton, R., Tomkins, I.B., (1968) Aust. J. Chem., 21, p. 1981; Volkovich, V.A., Griffiths, T.R., Thied, R.C., (2000) Progress in Molten Salt Chemistry, 1, p. 559. , ed. R.W. Berg, J. H. von Barner and H.A. Hjuler, Elsevier, Paris; Volkovich, V.A., Griffiths, T.R., Thied, R.C., (2001) Proc. 6 Int. Symp. Molten Salt Chem. Techn., p. 350. , ed. N.Y. Chen and Z.Y. Qiao, Shanghai University Press, Shanghai; Bailey, R.A., McIntyre, J.A., (1966) Inorg. Chem., 5, p. 964; Bailey, R.A., McIntyre, J.A., (1966) Inorg. Chem., 5, p. 1940; Bailey, R.A., Nobile, A.A., (1972) Electrochim. Acta, 17, p. 1139; Strubinger, S.K.D., Sun, I.-W., Cleland W.E., Jr., Hussey, C.L., (1990) Inorg. Chem., 29, p. 993; Strubinger, S.K.D., Sun, I.-W., Cleland W.E., Jr., Hussey, C.L., (1990) Inorg. Chem., 29, p. 4246; Strubinger, S.K.D., Hussey, C.L., Cleland W.E., Jr., (1991) Inorg. Chem., 30, p. 4276; Hondrogiannis, E.M., Mamantov, G., (1995) J. Electrochem. Soc., 142, p. 2532; Schwochau, K., (1964) Angew. Chem., 76, p. 9; Kotegov, K.V., Pavlov, O.N., Shvedov, V.P., (1968) Adv. Inorg. Radiochem., 11, p. 2; Khalil, M.Y., White, W.B., (1983) J. Am. Ceram. Soc., 66, p. C197; Berry, L.G., (1976) Powder Diffraction File, Inorganic Compounds, , Joint Committee on Powder Diffraction Standards, Swarthmore, file 20-286; Jorgensen, C.K., Schwochau, K., (1965) Z. Naturforsch., A, 20, p. 65; Eisenstein, J.C., (1961) J. Chem. Phys., 34, p. 1628; Rulfs, C.L., Meyer, R.J., (1955) J. Am. Chem. Soc., 77, p. 4505; Griffiths, T.R., Volkovich, V.A., Fray, D.J., Fields, M., (1998) Dyes Pigm., 39, pp. 139-157; Peacock, R.D., (1966) The Chemistry of Technetium and Rhenium, p. 65. , Elsevier Publishing Company, Amsterdam; Kryuchkov, S.V., Kuzina, A.F., Spitsyn, V.I., (1983) Russ. J. Inorg. Chem., 28, p. 1124; Thomas, R.W., Heeg, M.J., Elder, R.C., Deutsch, E., (1985) Inorg. Chem., 24, p. 1472; Elder, M., Fergusson, J.E., Gainsford, G.J., Hickford, J.H., Penfold, B.R., (1967) J. Chem. Soc., A, p. 1423; Peacock, R.D., (1966) The Chemistry of Technetium and Rhenium, p. 50. , Elsevier Publishing Company, Amsterdam; Almahamid, I., Bryan, J.C., Bucher, J.J., Burrell, A.K., Edelstein, N.M., Hudson, E.A., Kaltsoyannis, N., Reich, T., (1995) Inorg. Chem., 34, p. 193; Faggiani, R., Lock, C.J.L., Poce, J., (1980) Acta Crystallogr., Sect. B, 36, p. 231; Wharton, M.J., Atkins, B., Charnock, J.M., Livens, F.R., Pattrick, R.A.D., Collison, D., (2000) Appl. Geochem., 15, p. 347
Language of Original Document English
Abbreviated Source Title Phys. Chem. Chem. Phys.
Source Scopus