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ThFeAsNO中具有孤立超导区域的奇特相图。

Peculiar phase diagram with isolated superconducting regions in ThFeAsN O .

作者信息

Li Bai-Zhuo, Wang Zhi-Cheng, Wang Jia-Lu, Zhang Fu-Xiang, Wang Dong-Ze, Zhang Feng-Yuan, Sun Yu-Ping, Jing Qiang, Zhang Hua-Fu, Tan Shu-Gang, Li Yu-Ke, Feng Chun-Mu, Mei Yu-Xue, Wang Cao, Cao Guang-Han

机构信息

Department of Physics, School of Physics & Optoelectronic Engineering, Shandong University of Technology, Zibo 255000, People's Republic of China.

出版信息

J Phys Condens Matter. 2018 Jun 27;30(25):255602. doi: 10.1088/1361-648X/aac402. Epub 2018 May 11.

Abstract

ThFeAsN O ([Formula: see text]) system with heavy electron doping has been studied by the measurements of x-ray diffraction, electrical resistivity, magnetic susceptibility and specific heat. The non-doped compound exhibits superconductivity at [Formula: see text] K, which is possibly due to an internal uniaxial chemical pressure that is manifested by the extremely small value of As height with respect to the Fe plane. With the oxygen substitution, the T value decreases rapidly to below 2 K for [Formula: see text], and surprisingly, superconductivity re-appears in the range of [Formula: see text] with a maximum [Formula: see text] of 17.5 K at x  =  0.3. For the normal-state resistivity, while the samples in intermediate non-superconducting interval exhibit Fermi liquid behavior, those in other regions show a non-Fermi-liquid behavior. The specific heat jump for the superconducting sample of x  =  0.4 is [Formula: see text], which is discussed in terms of anisotropic superconducting gap. The peculiar phase diagram in ThFeAsN O presents additional ingredients for understanding the superconducting mechanism in iron-based superconductors.

摘要

通过X射线衍射、电阻率、磁化率和比热测量对具有重电子掺杂的ThFeAsNO([化学式:见原文])体系进行了研究。未掺杂的化合物在[化学式:见原文]K时表现出超导性,这可能是由于内部单轴化学压力,该压力由相对于Fe平面的As高度的极小值体现。随着氧的替代,对于[化学式:见原文],T值迅速降至2K以下,令人惊讶的是,超导性在[化学式:见原文]范围内重新出现,在x = 0.3时最大Tc为17.5K。对于正常态电阻率,虽然中间非超导区间的样品表现出费米液体行为,但其他区域的样品表现出非费米液体行为。x = 0.4的超导样品的比热跃变是[化学式:见原文],根据各向异性超导能隙进行了讨论。ThFeAsNO中独特的相图为理解铁基超导体的超导机制提供了更多要素。

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