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Silber(I)-cyanid-Komplexe mit Aminen und Azaaromaten

  • Mark Strey and Cindy Döring EMAIL logo
Published/Copyright: February 26, 2018
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Abstract

Silver cyanide can be treated with liquid amines or azaaromatics L to give crystalline complexes of various compositions, among them complexes of the simple type cyanido(amine)silver(I): L=isobutylamine and 4-picoline. Other AgCN:L ratios obtained were: 1:2 (benzylamine and 4-benzylpiperidine), 2:1 (2,4-lutidine), 2:3 (morpholine and 3,4-lutidine) and 3:4 (3,5-lutidine). The packing diagrams were analyzed in terms of Ag–Ag and Ag–CN contacts and N–H···N hydrogen bonds. The contacts often give rise to chains, which are sometimes linked to layers by hydrogen bonds.

Literatur

[1] P. G. Jones, C. Wölper, J. Chem. Soc., Dalton Trans.2005, 1762.10.1039/b503634hSearch in Google Scholar PubMed

[2] C. Wölper, M. Polo Bastardés, I. Dix, D. Kratzert, P. G. Jones, Z. Naturforsch. 2010, 65b, 647.10.1515/znb-2010-0601Search in Google Scholar

[3] C. Wölper, S. Durán Ibáñes, P. G. Jones, Z. Naturforsch. 2010, 65b, 1249.10.1515/znb-2010-1012Search in Google Scholar

[4] Conquest (version 1.18), CCDC, 2016; s. auch F. H. Allen, Acta Crystallogr. 2002, B58, 380–388.10.1107/S0108768102003890Search in Google Scholar

[5] Handbook of Chemistry and Physics, 56th edition, CRC-Press, Cleveland, Ohio, 19751976, S. B-236.Search in Google Scholar

[6] C. Döring, P. G. Jones, Z. Naturforsch. 2013, 68b, 474.10.5560/znb.2013-3040Search in Google Scholar

[7] H. Schmidbaur, A. Schier, Angew. Chem.2015, 127, 756.10.1002/ange.201405936Search in Google Scholar

[8] G. A. Bowmaker, C. Pettinari, B. W. Skelton, N. Somers, N. A. Vigar, A. H. White, Z. Anorg. Allg. Chem.2007, 633, 415.10.1002/zaac.200600317Search in Google Scholar

[9] T. Pretsch, H. Hartl, Inorg. Chim. Acta2005, 358, 1179.10.1016/j.ica.2004.11.037Search in Google Scholar

[10] A. A. Isab, M. I. M. Wazeer, M. Fettouhi, B. A. Al-Maythalony, A. R. Al-Arfaj, N. A. Al-Zamil, Inorg. Chim. Acta2007, 360, 3719.10.1016/j.ica.2007.04.036Search in Google Scholar

[11] G. A. Bowmaker, B. J. Kennedy, J. C. Reid, Inorg. Chem.1998, 37, 3968.10.1021/ic9714697Search in Google Scholar PubMed

[12] S. J. Hibble, A. C. Hannon, S. M. Cheyne, Inorg. Chem.2003, 42, 4724.10.1021/ic0342043Search in Google Scholar PubMed

[13] R. Usón, A. Launa, E. J. Fernándes, M. E. Ruiz-Romero, P. G. Jones, J. Lautner, J. Chem. Soc. Dalton Trans.1989, 2127.10.1039/DT9890002127Search in Google Scholar

[14] G. A. Bowmaker, Effendy, P. C. Junk, B. W. Skelton, A. H. White, Z. Naturforsch.2004, 59b, 1277.10.1515/znb-2004-11-1246Search in Google Scholar

[15] G. M. Sheldrick, Shelxl-97, Program for the Refinement of Crystal Structures, Universität Göttingen, Göttingen (Germany) 1997.Search in Google Scholar

[16] G. M. Sheldrick, Acta Crystallogr.2008, A64, 112.10.1107/S0108767307043930Search in Google Scholar PubMed

Erhalten: 2017-12-14
Angenommen: 2018-1-10
Online erschienen: 2018-2-26
Erschienen im Druck: 2018-4-25

©2018 Walter de Gruyter GmbH, Berlin/Boston

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