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An Anionic Moiety, MCl2- 4 (M=copper, zinc, cadmium and mercury) Stabilized by Bis(diethylenetriamine)copper(II) Cation

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Bimetallic complexes of the type [Cu(dien)2][MCl4], where M = Cu(II), Zn(II), Cd(II) and Hg(II), were prepared by reacting bis(diethylenetriamine)copper(II) dichloride with copper, zinc, cadmium and mercury dichlorides in ethanol. They have been characterized by elemental analyses, IR, electronic and EPR spectra, magnetic moment, TGAand conductivity measurements. Electrical conductivity of all the complexes indicated them to be 1:1 electrolyte in DMF and that the copper(II) ion is paramagnetic, maintaining its octahedral geometry, while metal ions in the anionic moiety of the complexes achieve their usual tetrahedral environment. An augmented magnetic moment has been observed in the [Cu(dien)2][CuCl4] complex, which is attributed to the ferromagnetic effect. From the EPR spectra, the Cu-Cu distance (rjk) has been found to be larger in [Cu(dien)2][CdCl4] than in [Cu(dien)2][CuCl4]. The TGAof [Cu(dien)2][CuCl4] showed the decomposition of various fragments between 226 to 1000 graduate C.
Rocznik
Strony
2047--2053
Opis fizyczny
Bibliogr. 14 poz., rys.
Twórcy
autor
  • Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India
autor
  • Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India
autor
  • Research Center, College of Sciences, King Saud University, Riyadh 11451, KSA
autor
  • Department of Chemistry, Aligarh Muslim University, Aligarh 202002, India
autor
  • Department of Chemistry, Addis Ababa University, Addis Ababa-1176, Ethiopia
Bibliografia
  • 1. Stephens F.S., J. Chem. Soc. A, 883 (1969).
  • 2. Allmann R., Kiestl M., Bolos C., Manoussakis G. and Nikolov G.St., Inorg. Chim, Ada, 175, 255 (1990).
  • 3. Davey G. and Stephens F.S., J. Chem. Soc. A, 103 (1971).
  • 4. Bailer Jr J.C. and Busch D.H., Chemistry of the Coordination Compounds, Reinhold Publishing Corp., New York, 1956, p. 5.
  • 5. Gerken M., Kolb P., Wegner A., Mercier H.P.A., Borrmann H., Dixon D.A. and Schrobilgen G.J., Inorg. Chem., 39, 2813 (2000).
  • 6. Casteel W.J., Kolb P., LeBlond N., Mercier H.P.A. and Schrobilgen G.J., Inorg. Chem., 35,929 (1996).
  • 7. Colacio E., Kivekas R., Lloret F., Sunberg M., Suarez-Varela J., Bardaji M. and Laguna A., Inorg. Chem., 41, 5141 (2002).
  • 8. Vogel A.I., Text Book of Quantitative Inorganic Analysis, Longmans Group, England, 1986, p. 507.
  • 9. Geary W.J., Coord Chem. Rev., 7, 81 (1971).
  • 10. Bernhardt P.V., Moore E.G. and Riley M.J., Inorg. Chem., 40, 5799 (2001).
  • 11. Marcotrigiano G., Menabue L., Pellacani G.C. and Saladini M., Inorg. Chim. Acta, 34,43 (1979).
  • 12. Blumenfeld L.A., Voevodski V.V. and Semenov A.G., Application of EPR in Chemistry (in Russian), Academy of Sciences, U.S.S.R. Siberian Sector, 1962, p. 79-85.
  • 13. Blumenfeld L.A., Voevodski V.V. and Semenov A.G., Application of EPR in Chemistry (in Russian), Academy of Sciences, U.S.S.R. Siberian Sector, 1962, p. 105-110.
  • 14. Lee J.D., Concise Inorganic Chemistry, Fifth edition, Blackwells Science Ltd., Oxford, 1996, p. 829-30
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ1-0024-0142
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