ELECTRONIC PAIRING IN EXOTIC SUPERCONDUCTORS

被引:70
作者
COX, DL [1 ]
MAPLE, MB [1 ]
机构
[1] UNIV CALIF SAN DIEGO,SAN DIEGO,CA 92103
关键词
D O I
10.1063/1.881443
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Investigations of rare earth, Aactinide, organic and oxide compounds have yielded several new classes of exotic superconductors. These include magnetically ordered superconductors, A15 superconductors, buckyball superconductors, heavy‐electron superconductors, organic superconductors and high� [Formula Omitted] oxide superconductors. These materials have properties significantly different from those of conventional superconductors such as Al and Zn, which are described well by the Bardeen‐Cooper‐Schrieffer model of superconductivity. We carefully distinguish between the BCS model and the more general BCS theory. In the BCS theory superconductivity arises, loosely speaking, from electron pairs that behave essentially as bosons and undergo macroscopic condensation to the lowest energy state at the critical temperature [Formula Omitted] The BCS model, presented in 1957, further specifies that the pairing is mediated by exchange of quantized lattice vibrations (phonons) between the electrons, yielding pairs with zero spin S (spin singlet) and zero angular momentum L (s wave). This model is but one example of the BCS pairing theory; another describes the superfluid state of [Formula Omitted] where the fermionic [Formula Omitted] atoms form atoms form p‐wave [Formula Omitted] spin‐triplet [Formula Omitted] pairs held together by the exchange of magnetic excitations of the surrounding atomic sea. Superconductivity in heavy‐fermion materials and high‐Tc cuprates may involve electron pairing with unconventional symmetries and mechanisms. © 1995, American Institute of Physics. All rights reserved.
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页码:32 / 40
页数:9
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