节点文献

具有高阶范霍夫奇点的自选轨道耦合体系中的鲁棒拓扑超导(英文)

Robust topological superconductivity in spin–orbit coupled systems at higher-order van Hove filling

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 韩欣龙占俊张富春胡江平吴贤新

【Author】 Xinloong Han;Jun Zhan;Fu-Chun Zhang;Jiangping Hu;Xianxin Wu;Kavli Institute for Theoretical Sciences, University of Chinese Academy of Sciences;Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences;School of Physical Sciences, University of Chinese Academy of Sciences;CAS Key Laboratory of Theoretical Physics, Institute of Theoretical Physics, Chinese Academy of Sciences;

【通讯作者】 韩欣龙;胡江平;吴贤新;

【机构】 Kavli Institute for Theoretical Sciences, University of Chinese Academy of SciencesBeijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of SciencesSchool of Physical Sciences, University of Chinese Academy of SciencesCAS Key Laboratory of Theoretical Physics, Institute of Theoretical Physics, Chinese Academy of Sciences

【摘要】 Van Hove singularities in proximity to the Fermi level promote electronic interactions and generate diverse competing instabilities. It is also known that a nontrivial Berry phase derived from spin–orbit coupling can introduce an intriguing decoration into the interactions and thus alter correlated phenomena. However, it is unclear how and what type of new physics can emerge in a system featured by the interplay between van Hove singularities(VHSs) and the Berry phase. Here, based on a general Rashba model on the square lattice, we comprehensively explore such an interplay and its significant influence on the competing electronic instabilities by performing a parquet renormalization group analysis. Despite the existence of a variety of comparable fluctuations in the particle–particle and particle-hole channels associated with higher-order VHSs, we find that the chiral p ± ip pairings emerge as two stable fixed trajectories within the generic interaction parameter space, namely the system becomes a robust topological superconductor. The chiral pairings stem from the hopping interaction induced by the nontrivial Berry phase. The possible experimental realization and implications are discussed. Our work sheds new light on the correlated states in quantum materials with strong spin–orbit coupling(SOC) and offers fresh insights into the exploration of topological superconductivity.

【Abstract】 Van Hove singularities in proximity to the Fermi level promote electronic interactions and generate diverse competing instabilities. It is also known that a nontrivial Berry phase derived from spin–orbit coupling can introduce an intriguing decoration into the interactions and thus alter correlated phenomena. However, it is unclear how and what type of new physics can emerge in a system featured by the interplay between van Hove singularities(VHSs) and the Berry phase. Here, based on a general Rashba model on the square lattice, we comprehensively explore such an interplay and its significant influence on the competing electronic instabilities by performing a parquet renormalization group analysis. Despite the existence of a variety of comparable fluctuations in the particle–particle and particle-hole channels associated with higher-order VHSs, we find that the chiral p ± ip pairings emerge as two stable fixed trajectories within the generic interaction parameter space, namely the system becomes a robust topological superconductor. The chiral pairings stem from the hopping interaction induced by the nontrivial Berry phase. The possible experimental realization and implications are discussed. Our work sheds new light on the correlated states in quantum materials with strong spin–orbit coupling(SOC) and offers fresh insights into the exploration of topological superconductivity.

【基金】 supports by the Ministry of Science and Technology (2022YFA1403901);the National Natural Science Foundation of China (11920101005, 11888101, and 12047503);the New Cornerstone Investigator Program;partially supported by Chinese Academy of Sciences under contract No. JZHKYPT-2021–08;supports from China Postdoctoral Science Foundation Fellowship (2022M723112)
  • 【文献出处】 Science Bulletin ,科学通报(英文) , 编辑部邮箱 ,2024年03期
  • 【分类号】O511.3
  • 【下载频次】20
节点文献中: