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Large enhancement of superconducting transition temperature in single-element superconducting rhenium by shear strain

机译:剪切应变大幅度提高单元素超导rh中的超导转变温度

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摘要

Finding a physical approach for increasing the superconducting transition temperature (Tc) is a challenge in the field of material science. Shear strain effects on the superconductivity of rhenium were investigated using magnetic measurements, X-ray diffraction, transmission electron microscopy, and first-principles calculations. A large shear strain reduces the grain size and simultaneously expands the unit cells, resulting in an increase in Tc. Here we show that this shear strain approach is a new method for enhancing Tc and differs from that using hydrostatic strain. The enhancement of Tc is explained by an increase in net electron–electron coupling rather than a change in the density of states near the Fermi level. The shear strain effect in rhenium could be a successful example of manipulating Bardeen–Cooper–Schrieffer-type Cooper pairing, in which the unit cell volumes are indeed a key parameter.
机译:在物理科学领域,寻找一种提高超导转变温度(Tc)的物理方法是一项挑战。使用磁测量,X射线衍射,透射电子显微镜和第一性原理计算研究了剪切应变对of超导性的影响。大的剪切应变减小了晶粒尺寸,同时使晶胞膨胀,导致Tc增大。在这里,我们表明,这种剪切应变方法是一种提高Tc的新方法,与使用静水压力应变的方法不同。 Tc的增加可以通过净电子-电子耦合的增加而不是费米能级附近的状态密度的变化来解释。 rh中的剪切应变效应可能是操纵Bardeen-Cooper-Schrieffer型Cooper配对的成功例子,其中晶胞体积确实是关键参数。

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