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由自旋轨道耦合调控的近藤绝缘体向半金属的转变

Kondo Insulator to Semimetal Transformation Tuned by Spin-Orbit Coupling.

作者信息

Dzsaber S, Prochaska L, Sidorenko A, Eguchi G, Svagera R, Waas M, Prokofiev A, Si Q, Paschen S

机构信息

Institute of Solid State Physics, Vienna University of Technology, Wiedner Hauptstraße 8-10, 1040 Vienna, Austria.

Department of Physics and Astronomy, Rice University, Houston, Texas 77005, USA.

出版信息

Phys Rev Lett. 2017 Jun 16;118(24):246601. doi: 10.1103/PhysRevLett.118.246601.

Abstract

Recent theoretical studies of topologically nontrivial electronic states in Kondo insulators have pointed to the importance of spin-orbit coupling (SOC) for stabilizing these states. However, systematic experimental studies that tune the SOC parameter λ_{SOC} in Kondo insulators remain elusive. The main reason is that variations of (chemical) pressure or doping strongly influence the Kondo coupling J_{K} and the chemical potential μ-both essential parameters determining the ground state of the material-and thus possible λ_{SOC} tuning effects have remained unnoticed. Here, we present the successful growth of the substitution series Ce_{3}Bi_{4}(Pt_{1-x}Pd_{x}){3} (0≤x≤1) of the archetypal (noncentrosymmetric) Kondo insulator Ce{3}Bi_{4}Pt_{3}. The Pt-Pd substitution is isostructural, isoelectronic, and isosize, and it therefore is likely to leave J_{K} and μ essentially unchanged. By contrast, the large mass difference between the 5d element Pt and the 4d element Pd leads to a large difference in λ_{SOC}, which thus is the dominating tuning parameter in the series. Surprisingly, with increasing x (decreasing λ_{SOC}), we observe a Kondo insulator to semimetal transition, demonstrating an unprecedented drastic influence of the SOC. The fully substituted end compound Ce_{3}Bi_{4}Pd_{3} shows thermodynamic signatures of a recently predicted Weyl-Kondo semimetal.

摘要

近期对近藤绝缘体中拓扑非平凡电子态的理论研究指出,自旋轨道耦合(SOC)对于稳定这些态至关重要。然而,在近藤绝缘体中调节SOC参数λ_{SOC}的系统实验研究仍然难以实现。主要原因是(化学)压力或掺杂的变化会强烈影响近藤耦合J_{K}和化学势μ——这两个决定材料基态的关键参数——因此可能的λ_{SOC}调节效应一直未被注意到。在此,我们展示了原型(非中心对称)近藤绝缘体Ce_{3}Bi_{4}Pt_{3}的替代系列Ce_{3}Bi_{4}(Pt_{1 - x}Pd_{x}){3}(0≤x≤1)的成功生长。Pt - Pd替代是等结构、等电子且等尺寸的,因此可能使J{K}和μ基本保持不变。相比之下,5d元素Pt和4d元素Pd之间的巨大质量差异导致λ_{SOC}有很大差异,因此λ_{SOC}是该系列中主要的调节参数。令人惊讶的是,随着x增加(λ_{SOC}减小),我们观察到近藤绝缘体向半金属的转变,这表明SOC具有前所未有的剧烈影响。完全替代的终产物Ce_{3}Bi_{4}Pd_{3}表现出最近预测的外尔 - 近藤半金属的热力学特征。

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