대칭(對稱)-반대칭(反對稱) Carboxylate 다리로 연결(連結)된 이핵 구리(II) 착물(錯物)의 합성(合咸) 및 결정구조(結晶構造)

Synthesis and Crystal Structure of Syn-Anti Carboxylate-Bridged Dinuclear Copper(II) Complex

  • 최기영 (공주대학교 사범대학 화학교육과)
  • Choi, Ki-Young (Department of Chemistry Education, Kongju National University)
  • 발행 : 2006.12.31

초록

이핵 구리 착물(錯物) {[Cu(pmea)Cl][Cu$(H_2O)_3]}Cl_2\cdot H_2O$ (1) (Hpmea=bis(2-pyridylmethyl)amino-2-ethanoic acid)을 합성(合成)하고 구조(構造)를 규명(糾明)하였다. 이 착물(錯物)은 단사정계(單斜晶系), 공간군(空間群) $P2_1/c$, a=9.0008(6) ${\AA}$, b=28.0171(19) ${\AA}$, c=8.5590(6) ${\AA}$, $\beta$=104.2280(10)$^{\circ}$, V=2092.2(2) ${\AA}^3$, Z=4로 결정화(決定化) 되었다. 착물(錯物) 1의 결정구조(結晶構造)는 대칭(對稱)-반대칭(反對稱) carboxylate 다리로 연결(連結)된 이핵 착물(錯物)로서, 각각(各各) 구리원자의 배위환경(配位環境)은 고천(若千) 일그러진 사각뿔구조(構造)와 고천(若干) 일그러진 사각평면구조(構造)를 갖는다.

The dinuclear copper(II) complex {[Cu(pmea)Cl][Cu$(H_2O)_3]}Cl_2{\cdot} H_2O$ (1) (Hpmea=bis(2-pyridvlmethyl)amino-2-ethanoic acid) has been synthesized and characterized. It crystallizes in the monoclinic system $P2_1/c$, a=9.0008(6) ${\AA}$, b=28.0171(19) ${\AA}$, c=8.5590(6) ${\AA}$, $\beta$=104.2280(10)$^{\circ}$, V=2092.2(2) ${\AA}^3$, Z=4. Crystal structure of 1 reveals a syn-anti carboxylate-bridged dinuclear complex, in which the coordination environment around each copper atom exhibits a distorted square-pyramid and a distorted square plane, respectively.

키워드

참고문헌

  1. Kahn, O., Molecular Magnetism, VCH publishers, Weinheim, Germany (1993)
  2. Kahn, O. and Martinez, C. J., Science, 44, 279 (1998)
  3. Floret, F., Munno, G. D., Julve, M., Cano, J., Ruiz, R. and Caneschi, A., Angew. Chem., Int. Ed. Engl., 37, 135 (1998) https://doi.org/10.1002/(SICI)1521-3773(19980202)37:1/2<135::AID-ANIE135>3.0.CO;2-4
  4. Han, S., Manson, J. L., Kim, J. and Miller, J. S., Inorg. Chem., 39, 4182 (2000) https://doi.org/10.1021/ic000307z
  5. Colacio, E., Ghazi, M., Kivekas, R., Klinga, M., Lloret, F. and Moreno, J. M., Inorg. Chem., 39, 2882 (2000) https://doi.org/10.1021/ic991209k
  6. Choi, K.-Y., Jeon, Y.-M., Ryu, H., Oh, J.-J., Lim, H.-H. and Kim, M.-W., Polyhedron, 23, 903 (2004) https://doi.org/10.1016/j.poly.2003.11.058
  7. Choi, K.-Y., Jeon, Y.-M., Lee, K.-C., Choi, S.-N., Kim, M.-W. and Lim, H.-H., Transition Met. Chem., 29, 405 (2004) https://doi.org/10.1023/B:TMCH.0000027462.12383.c2
  8. Sheldrick, G. M., SADABS, University of Gottingen, Germany (1996)
  9. Sheldrick, G. M., Acta Crystallogr., Sect. A., A46, 467 (1990)
  10. Sheldrick, G. M., SHELXL97, Program for Crystal Structure Refinement, University of Gottingen, Germany (1997)
  11. Farrugia, L. J., J. Appl. Crystallogr., 30, 565 (1997)
  12. Addison, A. W., Rao, T. N., Reedijk, J., van Rijn, J. and Verschoor, G. C., J. Chem. Soc., Dalton Trans., 1349 (1984)
  13. Choi, K.-Y., Ryu, H., Sung, N.-D. and Suh, M., J. Chem. Crystallogr., 33, 947 (2003) https://doi.org/10.1023/A:1027485932736
  14. Deacon, B. and Phillips, R. J., Coord. Chem. Rev., 33, 227 (1980) https://doi.org/10.1016/S0010-8545(00)80455-5