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钌铜氧化物中从超导 - 反铁磁转变产生的负晶格膨胀

Negative lattice expansion from the superconductivity--antiferromagnetism crossover in ruthenium copper oxides.

作者信息

McLaughlin A C, Sher F, Attfield J P

机构信息

Department of Chemistry, University of Aberdeen, Meston Walk, Aberdeen AB24 3UE, UK.

出版信息

Nature. 2005 Aug 11;436(7052):829-32. doi: 10.1038/nature03828.

Abstract

The mechanism of high-transition-temperature (high-T(c)) superconductivity in doped copper oxides is an enduring problem. Antiferromagnetism is established as the competing order, but the relationship between the two states in the intervening 'pseudogap' regime has become a central puzzle. The role of the crystal lattice, which is important in conventional superconductors, also remains unclear. Here we report an anomalous increase of the distance between copper oxide planes on cooling, which results in negative thermal volume expansion, for layered ruthenium copper oxides that have been doped to the boundary of antiferromagnetism and superconductivity. We propose that a crossover between these states is driven by spin ordering in the ruthenium oxide layers, revealing a novel mechanism for negative lattice expansion in solids. The differences in volume and lattice strain between the distinct superconducting and antiferromagnetic states can account for the phase segregation phenomena found extensively in low-doped copper oxides, and show that Cooper pair formation is coupled to the lattice. Unusually large variations of resistivity with magnetic field are found in these ruthenium copper oxides at low temperatures through coupling between the ordered Ru and Cu spins.

摘要

掺杂铜氧化物中高转变温度(高Tc)超导的机制是一个长期存在的问题。反铁磁性被确立为竞争序,但在中间的“赝能隙”区域中这两种状态之间的关系已成为一个核心谜题。在传统超导体中很重要的晶格的作用也仍不明确。在此,我们报道了对于已掺杂至反铁磁性和超导性边界的层状钌铜氧化物,在冷却时氧化铜平面之间的距离出现反常增加,这导致负的热体积膨胀。我们提出这些状态之间的转变是由氧化钌层中的自旋序驱动的,揭示了固体中负晶格膨胀的一种新机制。不同超导态和反铁磁态之间的体积和晶格应变差异可以解释在低掺杂铜氧化物中广泛发现的相分离现象,并表明库珀对的形成与晶格耦合。通过有序的钌和铜自旋之间的耦合,在这些钌铜氧化物中低温下发现电阻率随磁场有异常大的变化。

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