Topological Phenomena in Artificial Quantum Materials Revealed by Local Chern Markers

被引:1
|
作者
Spataru, Catalin D. [1 ]
Pan, Wei [1 ]
Cerjan, Alexander [2 ]
机构
[1] Sandia Natl Labs, Livermore, CA 94551 USA
[2] Sandia Natl Labs, Ctr Integrated Nanotechnol, Albuquerque, NM 87185 USA
关键词
QUANTIZED HALL CONDUCTANCE; DIRAC FERMIONS; BLOCH ELECTRONS; EDGE STATES; K-THEORY; GRAPHENE; SPECTRUM; INSULATOR; PHASE;
D O I
10.1103/PhysRevLett.134.126601
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
A striking example of frustration in physics is Hofstadter's butterfly, a fractal structure that emerges from the competition between a crystal's lattice periodicity and the magnetic length of an applied field. Current methods for predicting the topological invariants associated with Hofstadter's butterfly are challenging or impossible to apply to a range of materials, including those that are disordered or lack a bulk spectral gap. Here, we demonstrate a framework for predicting a material's local Chern markers using its position-space description and validate it against experimental observations of quantum transport in artificial graphene in a semiconductor heterostructure, inherently accounting for fabrication disorder strong enough to close the bulk spectral gap. By resolving local changes in the system's topology, we reveal the topological origins of antidot-localized states that appear in artificial graphene in the presence of a magnetic field. Moreover, we show the breadth of this framework by simulating how Hofstadter's butterfly emerges from an initially unpatterned 2D electron gas as the system's potential strength is increased and predict that artificial graphene becomes a topological insulator at the critical magnetic field. Overall, we anticipate that a position-space approach to determine a material's Chern invariant without requiring prior knowledge of its occupied states or bulk spectral gaps will enable a broad array of fundamental inquiries and provide a novel route to material discovery, especially in metallic, aperiodic, and disordered systems.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] TOPOLOGICAL ORDERS AND CHERN-SIMONS THEORY IN STRONGLY CORRELATED QUANTUM LIQUID
    WEN, XG
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 1991, 5 (10): : 1641 - 1648
  • [42] Nonreciprocal Transport and Optical Phenomena in Quantum Materials
    Nagaosa, Naoto
    Yanase, Youichi
    ANNUAL REVIEW OF CONDENSED MATTER PHYSICS, 2024, 15 : 63 - 83
  • [43] Strong-Field Ionization Phenomena Revealed by Quantum Trajectories
    Moon, Taylor
    Bartschat, Klaus
    Douguet, Nicolas
    PHYSICAL REVIEW LETTERS, 2024, 133 (07)
  • [44] Hidden quantum nonlocality revealed by local filters
    Gisin, N
    PHYSICS LETTERS A, 1996, 210 (03) : 151 - 156
  • [45] Topological quantum materials for energy conversion and storage
    Luo, Huixia
    Yu, Peifeng
    Li, Guowei
    Yan, Kai
    NATURE REVIEWS PHYSICS, 2022, 4 (09) : 611 - 624
  • [46] Topological quantum materials for energy conversion and storage
    Huixia Luo
    Peifeng Yu
    Guowei Li
    Kai Yan
    Nature Reviews Physics, 2022, 4 : 611 - 624
  • [47] Interplay of Electronic Orders in Topological Quantum Materials
    Gruber, Christian Stefan
    Abdel-Hafiez, Mahmoud
    ACS MATERIALS AU, 2024,
  • [48] Topological Quantum Materials for Realizing Majorana Quasiparticles
    Lee, Stephen R.
    Sharma, Peter A.
    Lima-Sharma, Ana L.
    Pan, Wei
    Nenoff, Tina M.
    CHEMISTRY OF MATERIALS, 2019, 31 (01) : 26 - 51
  • [49] Topological Materials New Quantum Phases of Matter
    Bhardwaj, Vishal
    Chatterjee, Ratnamala
    RESONANCE-JOURNAL OF SCIENCE EDUCATION, 2020, 25 (03): : 431 - 441
  • [50] Topological Quantum Materials from the Viewpoint of Chemistry
    Kumar, Nitesh
    Guin, Satya N.
    Manna, Kaustuv
    Shekhar, Chandra
    Felser, Claudia
    CHEMICAL REVIEWS, 2021, 121 (05) : 2780 - 2815