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压力下 FeSe 中临界向列起伏的崩塌。

Collapse of Critical Nematic Fluctuations in FeSe under Pressure.

机构信息

Laboratoire Matériaux et Phénomènes Quantiques, UMR 7162 CNRS, Université Paris Diderot, Paris, France.

Department of Physics and Center for Advanced Quantum Studies, Beijing Normal University, Beijing 100875, China.

出版信息

Phys Rev Lett. 2018 Aug 17;121(7):077001. doi: 10.1103/PhysRevLett.121.077001.

Abstract

We report the evolution of the electronic nematic susceptibility in FeSe via Raman scattering as a function of hydrostatic pressure up to 5.8 GPa where the superconducting transition temperature T_{c} reaches its maximum. The critical nematic fluctuations observed at low pressure vanish above 1.6 GPa, indicating they play a marginal role in the fourfold enhancement of T_{c} at higher pressures. The collapse of nematic fluctuations appears to be linked to a suppression of low energy electronic excitations which manifests itself by optical phonon anomalies at around 2 GPa, in agreement with lattice dynamical and electronic structure calculations using local density approximation combined with dynamical mean field theory. Our results reveal two different regimes of nematicity in the phase diagram of FeSe under pressure: a d-wave Pomeranchuk instability of the Fermi surface at low pressure and a magnetic driven orthorhombic distortion at higher pressure.

摘要

我们通过拉曼散射研究了 FeSe 的电子向列性对静水压力的依赖性,压力最高可达 5.8GPa,此时超导转变温度 Tc 达到最大值。在 1.6GPa 以上,观察到的低温下的临界向列性涨落消失,表明它们在更高压力下 Tc 四倍增强中作用不大。向列性涨落的崩溃似乎与抑制低能电子激发有关,这在大约 2GPa 的光学声子异常中表现出来,与使用局域密度近似结合动力学平均场理论的晶格动力学和电子结构计算结果一致。我们的结果揭示了 FeSe 相图中向列性的两种不同状态:在低压下费米面的 d 波 Pomeranchuk 不稳定性和在高压下磁驱动的正交畸变。

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