首站-论文投稿智能助手
典型文献
Topological properties of non-Hermitian Creutz ladders
文献摘要:
We study topological properties of the one-dimensional Creutz ladder model with different non-Hermitian asymmet-ric hoppings and on-site imaginary potentials,and obtain phase diagrams regarding the presence and absence of an energy gap and in-gap edge modes.The non-Hermitian skin effect (NHSE),which is known to break the bulk-boundary corre-spondence (BBC),emerges in the system only when the non-Hermiticity induces certain unbalanced non-reciprocity along the ladder.The topological properties of the model are found to be more sophisticated than that of its Hermitian counter-part,whether with or without the NHSE.In one scenario without the NHSE,the topological winding is found to exist in a two-dimensional plane embedded in a four-dimensional space of the complex Hamiltonian vector.The NHSE itself also possesses some unusual behaviors in this system,including a high spectral winding without the presence of long-range hop-pings,and a competition between two types of the NHSE,with the same and opposite inverse localization lengths for the two bands,respectively.Furthermore,it is found that the NHSE in this model does not always break the conventional BBC,which is also associated with whether the band gap closes at exceptional points under the periodic boundary condition.
文献关键词:
作者姓名:
Hui-Qiang Liang;Linhu Li
作者机构:
Guangdong Provincial Key Laboratory of Quantum Metrology and Sensing & School of Physics and Astronomy,Sun Yat-Sen University (Zhuhai Campus),Zhuhai 519082,China
引用格式:
[1]Hui-Qiang Liang;Linhu Li-.Topological properties of non-Hermitian Creutz ladders)[J].中国物理B(英文版),2022(01):64-77
A类:
Creutz,ladders,NHSE,spondence,pings
B类:
Topological,properties,Hermitian,We,study,topological,one,dimensional,model,different,asymmet,ric,hoppings,imaginary,potentials,obtain,phase,diagrams,regarding,presence,absence,energy,gap,edge,modes,skin,effect,which,known,break,bulk,boundary,corre,BBC,emerges,system,only,when,Hermiticity,induces,certain,unbalanced,reciprocity,along,are,found,sophisticated,than,that,counter,part,whether,without,In,scenario,winding,exist,two,plane,embedded,four,space,complex,Hamiltonian,vector,itself,also,possesses,some,unusual,behaviors,this,including,high,spectral,range,competition,between,types,same,opposite,inverse,localization,lengths,bands,respectively,Furthermore,does,not,always,conventional,associated,closes,exceptional,points,under,periodic,condition
AB值:
0.516361
相似文献
Two-dimensional Dirac-line semimetals resistant to strong spin-orbit coupling
Deping Guo;Pengjie Guo;Shijing Tan;Min Feng;Limin Cao;Zheng-Xin Liu;Kai Liu;Zhong-Yi Lu;Wei Ji-Beijing Key Laboratory of Optoelectronic Functional Materials&Micro-Nano Devices,Department of Physics,Renmin University of China,Beijing 100872,China;Songshan Lake Materials Laboratory,Dongguan 523808,China;Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China;Hefei National Laboratory for Physical Sciences at the Microscale,University of Science and Technology of China,Hefei 230026,China;School of Physics and Technology and Key Laboratory of Artificial Micro-and Nano-Structures of Ministry of Education,Wuhan University,Wuhan 430072,China;Institute for Advanced Studies,Wuhan University,Wuhan 430072,China
Tunable Dirac semimetals with higher-order Fermi arcs in Kagome lattices Pd3Pb2X2(X=S,Se)
Simin Nie;Jia Chen;Changming Yue;Congcong Le;Danwen Yuan;Zhijun Wang;Wei Zhang;Hongming Weng-Department of Materials Science and Engineering,Stanford University,Stanford CA 94305,USA;Zhejiang Lab,Hangzhou 311121,China;Department of Physics,University of Fribourg,Fribourg 1700,Switzerland;RIKEN Interdisciplinary Theoretical and Mathematical Sciences(iTHEMS),Wako,Saitama 351-0198,Japan;Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials,College of Physics and Energy,Fujian Normal University,Fuzhou 350117,China;Fujian Provincial Collaborative Innovation Center for Advanced High-field Superconducting Materials and Engineering,Fuzhou 350117,China;Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China;School of Physics,University of Chinese Academy of Sciences,Beijing 100049,China;Songshan Lake Materials Laboratory,Dongguan 523808,China
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。