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Phys. Rev. B 14, 3036–3051 (1976)

Spin-Peierls transitions in magnetic donor-acceptor compounds of tetrathiafulvalene (TTF) with bisdithiolene metal complexes

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I. S. Jacobs, J. W. Bray, H. R. Hart, Jr., L. V. Interrante, J. S. Kasper, and G. D. Watkins*
General Electric Company, Corporate Research and Development, Schenectady, New York 12301

D. E. Prober
Department of Engineering and Applied Science, Yale University, New Haven, Connecticut 06520

J. C. Bonner
Applied Mathematics Department, Brookhaven National Laboratory, Upton, New York 11973

Received 12 May 1976; published in the issue dated 1 October 1976

The spin-Peierls transition is considered as a progressive spin-lattice dimerization occurring below a transition temperature in a system of one-dimensional antiferromagnetic Heisenberg chains. In the simplest theories, the transition is second order and the ground state is a singlet with a magnetic gap. The historical origins and theoretical development of the concept are examined. Magnetic susceptibility and EPR measurements on the π-donor-acceptor compounds TTF·MS4C4(CF3)4 (M=Cu, Au; TTF is tetrathiafulvalene) are reported. These compounds exhibit clearly the characteristics of the spin-Peierls transition in reasonably good agreement with a mean-field theory. The susceptibility of each compound has a broad maximum near 50 K, while the transitions occur at 12 and 2.1 K for M=Cu and Au, respectively. EPR linewidth observations over a broad temperature range are examined. Areas for further experimental and theoretical work are indicated, and a critical comparison is made of related observations on other materials.

© 1976 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevB.14.3036
DOI:
10.1103/PhysRevB.14.3036
PACS:

*Present address: Physics Dept., Lehigh University, Bethlehem, Pa. 18015.

Present address: Physics Dept., Univ. of Rhode Island, Kingston, R. I. 02881.