论文标题

部分可观测时空混沌系统的无模型预测

Evidence of unconventional pairing in the quasi two-dimensional CuIr$_2$Te$_4$ superconductor

论文作者

Shang, T., Chen, Y., Xie, W., Gawryluk, D. J., Gupta, R., Khasanov, R., Zhu, X. Y., Zhang, H., Zhen, Z. X., Yu, B. C., Zhou, Z., Xu, Y., Zhan, Q. F., Pomjakushina, E., Yuan, H. Q., Shiroka, T.

论文摘要

cuir $ _ {2-x} $ ru $ _x $ _4 $ _4 $超导体($ t_c $ 2.8 k左右)可以托管电荷密度波,其发作和与超导相互作用在显微镜水平上并不众所周知。在这里,我们报告了$ x $ = 0和0.05病例的全面研究,其超导性是通过电抗性,磁化和热容量测量值来表征的,而它们的显微镜超导性能是通过muon-spin旋转和放松研究的($μ$ $ $ $ $ $ $ $ $)。在Cuir $ _ {2-x} $ ru $ _x $ te $ _4 $中,均取决于温度依赖的电子特定热量和超级流体密度(通过横向场$μ$ sr确定),由两个差距(s+d)最好描述,包括两个频率(s+d),包括一个无node node的差距和nodes gap for nodes。上临界场的温度依赖性$ h_ \ mathrm {c2}(t)$也支持了多计划超导性。但是,在施加的压力下,电荷密度波开始发展,因此,Cuir $ _2 $ TE $ _4 $的超导性达到了更传统的S波角色。从一系列实验中,我们提供了充分的证据,表明cuir $ _ {2-x} $ ru $ _x $ _x $ te $ _4 $ family属于极少数情况,在这种情况下,在充电密度密度的量子量子关键点附近发现了非常规的超导配对。

The CuIr$_{2-x}$Ru$_x$Te$_4$ superconductors (with a $T_c$ around 2.8 K) can host charge-density waves, whose onset and interplay with superconductivity are not well known at a microscopic level. Here, we report a comprehensive study of the $x$ = 0 and 0.05 cases, whose superconductivity was characterized via electrical-resistivity-, magnetization-, and heat-capacity measurements, while their microscopic superconducting properties were studied via muon-spin rotation and relaxation ($μ$SR). In CuIr$_{2-x}$Ru$_x$Te$_4$, both the temperature-dependent electronic specific heat and the superfluid density (determined via transverse-field $μ$SR) are best described by a two-gap (s+d)-wave model, comprising a nodeless gap and a gap with nodes. The multigap superconductivity is also supported by the temperature dependence of the upper critical field $H_\mathrm{c2}(T)$. However, under applied pressure, a charge-density-wave order starts to develop and, as a consequence, the superconductivity of CuIr$_2$Te$_4$ achieves a more conventional s-wave character. From a series of experiments, we provide ample evidence that the CuIr$_{2-x}$Ru$_x$Te$_4$ family belongs to the rare cases, where an unconventional superconducting pairing is found near a charge-density-wave quantum critical point.

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