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五钴镓化钚中的非常规超导性。

Unconventional superconductivity in PuCoGa5.

作者信息

Curro N J, Caldwell T, Bauer E D, Morales L A, Graf M J, Bang Y, Balatsky A V, Thompson J D, Sarrao J L

机构信息

Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Nature. 2005 Mar 31;434(7033):622-5. doi: 10.1038/nature03428.

Abstract

In the Bardeen-Cooper-Schrieffer theory of superconductivity, electrons form (Cooper) pairs through an interaction mediated by vibrations in the underlying crystal structure. Like lattice vibrations, antiferromagnetic fluctuations can also produce an attractive interaction creating Cooper pairs, though with spin and angular momentum properties different from those of conventional superconductors. Such interactions have been implicated for two disparate classes of materials--the copper oxides and a set of Ce- and U-based compounds. But because their transition temperatures differ by nearly two orders of magnitude, this raises the question of whether a common pairing mechanism applies. PuCoGa5 has a transition temperature intermediate between those classes and therefore may bridge these extremes. Here we report measurements of the nuclear spin-lattice relaxation rate and Knight shift in PuCoGa5, which demonstrate that it is an unconventional superconductor with properties as expected for antiferromagnetically mediated superconductivity. Scaling of the relaxation rates among all of these materials (a feature not exhibited by their Knight shifts) establishes antiferromagnetic fluctuations as a likely mechanism for their unconventional superconductivity and suggests that related classes of exotic superconductors may yet be discovered.

摘要

在巴丁 - 库珀 - 施里弗超导理论中,电子通过由基础晶体结构中的振动介导的相互作用形成(库珀)对。与晶格振动类似,反铁磁涨落也能产生一种吸引相互作用以形成库珀对,不过其自旋和角动量特性与传统超导体不同。这种相互作用在两类不同的材料中被发现——铜氧化物以及一组铈基和铀基化合物。但由于它们的转变温度相差近两个数量级,这就引发了一个问题,即是否存在一种通用的配对机制。五钴化镤(PuCoGa5)的转变温度介于这两类材料之间,因此可能成为连接这两个极端情况的桥梁。在此,我们报告了对五钴化镤(PuCoGa5)的核自旋 - 晶格弛豫率和奈特位移的测量结果,这些结果表明它是一种非常规超导体,具有反铁磁介导超导所预期的特性。所有这些材料的弛豫率的标度关系(其奈特位移未表现出这一特征)确立了反铁磁涨落是它们非常规超导的一种可能机制,并表明可能还会发现相关类别的奇异超导体。

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