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Unconventional superconductivity in Y5Rh6Sn18 probed by muon spin relaxation

机译:介子自旋弛豫探测Y5Rh6Sn18中的非常规超导

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摘要

Conventional superconductors are robust diamagnets that expel magnetic fields through the Meissner effect. It would therefore be unexpected if a superconducting ground state would support spontaneous magnetics fields. Such broken time-reversal symmetry states have been suggested for the high—temperature superconductors, but their identification remains experimentally controversial. We present magnetization, heat capacity, zero field and transverse field muon spin relaxation experiments on the recently discovered caged type superconductor Y5Rh6Sn18 ( TC= 3.0 K). The electronic heat capacity of Y5Rh6Sn18 shows a T3 dependence below Tc indicating an anisotropic superconducting gap with a point node. This result is in sharp contrast to that observed in the isostructural Lu5Rh6Sn18 which is a strong coupling s—wave superconductor. The temperature dependence of the deduced superfluid in density Y5Rh6Sn18 is consistent with a BCS s—wave gap function, while the zero-field muon spin relaxation measurements strongly evidences unconventional superconductivity through a spontaneous appearance of an internal magnetic field below the superconducting transition temperature, signifying that the superconducting state is categorized by the broken time-reversal symmetry.
机译:常规的超导体是坚固的反磁铁,可以通过迈斯纳效应来驱除磁场。因此,如果超导基态会支持自发磁场,那将是出乎意料的。对于高温超导体,已经提出了这种断裂的时间反转对称状态,但在实验上仍存在争议。我们对最近发现的笼型超导体Y5Rh6Sn18(TC = 3.0 K)进行磁化,热容,零场和横场μ自旋弛豫实验。 Y5Rh6Sn18的电子热容显示出低于Tc的T 3 依赖性,表明与点节点之间存在各向异性的超导间隙。该结果与在等结构Lu5Rh6Sn18中观察到的结果形成鲜明对比,Lu5Rh6Sn18是强耦合的s波超导体。推导的密度Y5Rh6Sn18中的超流体的温度依赖性与BCS s-波隙函数一致,而零场μ介子自旋弛豫测量通过超导转变温度以下的内部磁场的自发出现强烈证明了超常规超导性,这表明超导状态是按破坏的时间反转对称性分类的。

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