Mapping a topology-disorder phase diagram with a quantum simulator

POSTER

Abstract

The competition and interplay of topology and disorder has been one of the most famous topics in the field of condensed matter physics. In addition to the intuitive tendency to bring the system into a topologically trivial and localized phase, it has been discovered that disorder can also induce nontrivial topology and transport. To reveal rich and diverse phase structures, mapping phase diagrams plays an important role in both theoretical and experimental sides. Quantum simulation provides a prospective way to study the target model, explore the phase diagram and reveal the underlying mechanism. Thanks to the unprecedented controllability, superconducting quantum simulators have been introduced to investigate complex many-body physics and bring thought experiments into reality. To our best knowledge, the effort to map a phase diagram with a rich structure is still lacking. Here we report a systematic experimental study of the topology-disorder phase diagram with 32 qubits on a programmable analog quantum simulator. We implement one-dimensional (1D) disordered dimerized tight-binding models over a wide parameter range and observe diverse phases, including the topological Anderson insulator (TAI) and the inverse Anderson localization (IAL). Our experiment manifests the efficiency, accuracy and flexibility of the superconducting-circuit device and paves the way to the demonstration and understanding of many-body phenomena with noisy intermediate-scale quantum simulators.

*We acknowledge support from the National Natural Science Foundation of China (grant nos. 11890704, 12174126, 12104055, 12104056 and 12004042), Natural Science Foundation of Beijing (grant no. Z190012), Guangdong Basic and Applied Basic Research Foundation (grant no. 2021A1515010315) and Key Area Research and Development Program of Guangdong Province (grant no. 2018B030326001).

Presenters

  • Huikai Xu

    • Beijing Academy of Quantum Information Sciences

Authors

  • Huikai Xu

    • Beijing Academy of Quantum Information Sciences
  • Xuegang Li

    • Beijing Academy of Quantum Information Sciences
  • Junhua Wang

    • Beijing Academy of Quantum Information Sciences
  • Ling-Zhi Tang

    • South China Normal University
  • Dan-Wei Zhang

    • South China Normal University
  • Jing-Ning Zhang

    • Beijing Academy of Quantum Information Sciences
  • Yi-Rong Jin

    • Beijing Academy of Quantum Information Sciences
  • Hai-Feng Yu

    • Beijing Academy of Quantum Information Sciences
  • Chu-Hong Yang

    • Beijing Academy of Quantum Information Sciences
  • Tang Su

    • Beijing Academy of Quantum Information Sciences
  • Chen-Lu Wang

    • Beijing Academy of Quantum Information Sciences
  • Zhen-Yu Mi

    • Beijing Academy of Quantum Information Sciences
  • Wei-Jie Sun

    • Beijing Academy of Quantum Information Sciences
  • Xue-Hui Liang

    • Beijing Academy of Quantum Information Sciences
  • Chen Mo

    • Beijing Academy of Quantum Information Sciences
  • Cheng-Yao Li

    • Beijing Academy of Quantum Information Sciences
  • Yingshan Zhang

    • Beijing Academy of Quantum Information Sciences
  • Ke-Huan Linghu

    • Beijing Academy of Quantum Information Sciences
  • Jiaxiu Han

    • Beijing Academy of Quantum Information Sciences
  • Weiyang Liu

    • Beijing Academy of Quantum Information Sciences
  • Yulong Feng

    • Beijing Academy of Quantum Information Sciences
  • Pei Liu

    • Beijing Academy of Quantum Information Sciences
    • Tsinghua University
  • Guangming Xue

    • Beijing Academy of Quantum Information Sciences