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Suppression of superconductivity and structural phase transitions under pressure in tetragonal FeS

机译:四方FeS在压力下的超导性和结构相变的抑制

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摘要

Pressure is a powerful tool to study iron-based superconductors. Here, we report systematic high-pressure transport and structural characterizations of the newly discovered superconductor FeS. It is found that superconductor FeS (tetragonal) partly transforms to a hexagonal structure at 0.4 GPa, and then completely transforms to an orthorhombic phase at 7.4 GPa and finally to a monoclinic phase above 9.0 GPa. The superconducting transition temperature of tetragonal FeS was gradually depressed by pressure, different from the case in tetragonal FeSe. With pressure increasing, the S-Fe-S angles only slightly change but the anion height deviates farther from 1.38 Å. This change of anion height, together with the structural instability under pressure, should be closely related to the suppression of superconductivity. We also observed an anomalous metal-semiconductor transition at 6.0 GPa and an unusual increased resistance with further compression above 9.6 GPa. The former can be ascribed to the tetragonal-orthorhombic structural phase transition, and the latter to the electronic structure changes of the high-pressure monoclinic phase. Finally, a phase diagram of tetragonal FeS as functions of pressure and temperature was mapped out for the first time, which will shed new light on understanding of the structure and physics of the superconducting FeS.
机译:压力是研究铁基超导体的有力工具。在这里,我们报告了新发现的超导体FeS的系统高压传输和结构特征。发现超导体FeS(四方)在0.4 GPa时部分转变为六方结构,然后在7.4 GPa时完全转变为正交晶相,最后转变为在9.0 GPa以上的单斜晶相。与四角形FeSe的情况不同,四角形FeS的超导转变温度通过压力逐渐降低。随着压力的增加,S-Fe-S角度仅略有变化,但阴离子高度偏离了1.38farÅ。阴离子高度的这种变化以及在压力下的结构不稳定性应与抑制超导性密切相关。我们还观察到在6.0 GPa处出现异常的金属-半导体过渡,并且在9.6 GPa以上受到进一步压缩时电阻异常增加。前者可归因于四方-斜方晶的结构相变,后者可归因于高压单斜相的电子结构变化。最后,首次绘制了四方相FeS随压力和温度变化的相图,为理解超导FeS的结构和物理性质提供了新的思路。

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