抑制铁硒基Mott绝缘体CsFe4−xSe4诱导的非常规超导性

Jin Si, Guanyu Chen, Qing Li, Xiyu Zhu, Huan Yang, H. Wen
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引用次数: 4

摘要

基于FeSe的超导体有块状FeSe、单层FeSe薄膜、插层KxFe2-ySe2和Li1-xFexOHFeSe等。它们的正常状态都显示出金属行为。这里的关键是FeSe层,它以单层薄膜的形式表现出最高的超导转变温度。最近发现了一种新的FeSe基化合物CsFe4-xSe4,其空间基团为Bmmm。有趣的是,该系统显示出强烈的绝缘体样行为,尽管它与其他亲属共享相同的FeSe平面。密度泛函理论计算表明它应该是一种金属,这与实验观察结果形成鲜明对比。在这里,我们报告了通过施加压力来抑制这种绝缘体样行为的非常规超导性的出现。在环境压力下,类绝缘子的行为不能被建模为带绝缘子,而可以用相关系统的变距离跳变模型来描述。此外,还测量了400 mK以下的比热,并观察到显著的残余系数gamma_0=C/T|T->0,这与类绝缘体态形成了对比,表明自旋动力学具有一定的量子自由。通过施加压力,绝缘体样行为逐渐被抑制,系统变成金属,最终在约5.1 K下实现超导性。超导转变强烈依赖于磁场和施加的电流,表明一个脆弱的超流体密度。我们的结果表明,超导性是在CsFe4-xSe4的强相关背景上通过稀释的库珀对建立起来的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe4−xSe4
There are several FeSe based superconductors, including the bulk FeSe, monolayer FeSe thin film, intercalated KxFe2-ySe2 and Li1-xFexOHFeSe, etc. Their normal states all show metallic behavior. The key player here is the FeSe layer which exhibits the highest superconducting transition temperature in the form of monolayer thin film. Recently a new FeSe based compound, CsFe4-xSe4 with the space group of Bmmm was found. Interestingly the system shows a strong insulator-like behavior although it shares the same FeSe planes as other relatives. Density functional theory calculations indicate that it should be a metal, in sharp contrast with the experimental observations. Here we report the emergence of unconventional superconductivity by applying pressure to suppress this insulator-like behavior. At ambient pressure, the insulator-like behavior cannot be modeled as a band insulator, but can be described by the variable-range-hopping model for correlated systems. Furthermore, the specific heat down to 400 mK has been measured and a significant residual coefficient gamma_0=C/T|T->0 is observed, which contrasts the insulator-like state and suggests some quantum freedom of spin dynamics. By applying pressure the insulator-like behavior is gradually suppressed and the system becomes a metal, finally superconductivity is achieved at about 5.1 K. The superconducting transition strongly depends on magnetic field and applied current, indicating a fragile superfluid density. Our results suggest that the superconductivity is established by diluted Cooper pairs on top of a strong correlation background in CsFe4-xSe4.
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