Oxidation of Np(IV) with hydrogen peroxide in carbonate solutions

被引:2
作者
Shilov V.P. [1 ]
Fedoseev A.M. [1 ]
机构
[1] Frumkin Institute of Physical Chemistry and Electrochemistry, Russian Academy of Sciences, Leninskii pr. 31, block 4
关键词
carbonate solution; hydrogen peroxide; kinetics; neptunium(IV); redox reactions;
D O I
10.1134/S1066362213030077
中图分类号
学科分类号
摘要
Oxidation of Np(IV) with hydrogen peroxide in NaHCO3-Na 2CO3 solutions was studied by spectrophotometry. In NaHCO3 solution, Np(IV) is oxidized to Np(V) and partially to Np(VI). It follows from the electronic absorption spectra that Np(IV) in 1 M Na 2CO3 forms with H2O2 a mixed peroxide-carbonate complex. Its stability constant β is estimated at 25-30. The Np(IV) bound in the mixed complex disappears in a first-order reaction with respect to [Np(IV)]. The first-order rate constant k' is proportional to [H2O2] in the H2O2 concentration range 2.5-11 mM, but further increase in [H2O2] leads to a decrease in k′. The bimolecular rate constant k = k′/[H 2O2] in solutions containing up to 11 mM H 2O2 increases in going from 1 M NaHCO3 to 1 M Na2CO3 and significantly decreases with a further increase in the carbonate content. The activated complex is formed from Np(IV) peroxide-carbonate and carbonate complexes. Synchronous or successive electron transfer leads to the oxidation of Np(IV) to Np(V). Large excess of H 2O2 oxidizes Np(V) to Np(VI), which is then slowly reduced. As a result, Np(V) is formed in carbonate solutions at any Np(IV) and H2O2 concentrations. © 2013 Pleiades Publishing, Ltd.
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页码:287 / 290
页数:3
相关论文
共 12 条
  • [1] Stepanov, S.I., Chekmarev, A.M., (2008) Dokl. Ross. Akad. Nauk, 423 (1), pp. 1-3
  • [2] Stepanov, S.I., Boyarintsev, A.V., Vazhenkov, A.V., (2010) Ross. Khim. Zh. (Zh. Ross. Khim. O-va. Im. D.I. Mendeleeva), 54 (3), pp. 25-34. , 1:CAS:528:DC%2BC3cXhtlCgu73F
  • [3] Fedoseev, A.M., Peretrukhin, V.F., Krot, N.N., (1979) Dokl. Akad. Nauk SSSR, 244 (5), pp. 1187-1190. , 1:CAS:528:DyaE1MXhsF2jtLg%3D
  • [4] Shilov, V.P., Yusov, A.B., Gogolev, A.V., Fedoseev, A.M., (2005) Radiokhimiya, 47 (6), pp. 512-516
  • [5] Shilov, V.P., Fedoseev, A.M., (2010) Radiokhimiya, 52 (3), pp. 234-237
  • [6] Wester, D.W., Sullivan, J.C., (1981) J. Inorg. Nucl. Chem., 43 (11), pp. 2919-2923. , 10.1016/0022-1902(81)80643-4 1:CAS:528:DyaL38XitVOhu74%3D
  • [7] Mulac, W.A., Gordon, S., Schmidt, K.N., (1984) Inorg. Chem., 23 (12), pp. 1639-1641. , 10.1021/ic00180a003 1:CAS:528:DyaL2cXitFKgtL4%3D
  • [8] Shilov, V.P., Fedoseev, A.M., (2013) Radiokhimiya, 55 (2), pp. 120-124
  • [9] Runde, W., Brodnax, L.F., Peper, S.M., (2006) Recent Advances in Actinide Science: Proc. Eighth Actinide Conf. "actinides 2005, , Royal Soc. Chem. Dorchester (Manchester, UK, July 4-8, 2005)
  • [10] Rai, D., Hess, N.J., Felmy, A.R., Moore, D.A., (1999) Radiochim. Acta, 84 (3), pp. 159-169. , 1:CAS:528:DyaK1MXkvVClu78%3D