中国物理快报(英文版)2024,Vol.41Issue(9) :1-8.DOI:10.1088/0256-307X/41/9/090301

Simulating a Chern Insulator with C=±2 on Synthetic Floquet Lattice

雷凌霄 王伟臣 黄光耀 胡顺 曹希 张鑫方 邓明堂 陈平形
中国物理快报(英文版)2024,Vol.41Issue(9) :1-8.DOI:10.1088/0256-307X/41/9/090301

Simulating a Chern Insulator with C=±2 on Synthetic Floquet Lattice

雷凌霄 1王伟臣 2黄光耀 2胡顺 2曹希 3张鑫方 2邓明堂 4陈平形5
扫码查看

作者信息

  • 1. Institute for Quantum Science and Technology,College of Science,National University of Defense Technology,Changsha 410073,China
  • 2. Institute for Quantum Information & State Key Laboratory of High Performance Computing,College of Computer Science and Technology,National University of Defense Technology,Changsha 410073,China
  • 3. Greatwall Quantum Laboratory,Changsha 410006,China
  • 4. Institute for Quantum Information & State Key Laboratory of High Performance Computing,College of Computer Science and Technology,National University of Defense Technology,Changsha 410073,China;Hefei National Laboratory,Hefei 230088,China
  • 5. Institute for Quantum Science and Technology,College of Science,National University of Defense Technology,Changsha 410073,China;Hefei National Laboratory,Hefei 230088,China
  • 折叠

Abstract

The synthetic Floquet lattice,generated by multiple strong drives with mutually incommensurate frequencies,provides a powerful platform for quantum simulation of topological phenomena.In this study,we propose a 4-band tight-binding model of the Chern insulator with a Chern number C=±2 by coupling two layers of the half Bernevig-Hughes-Zhang lattice and subsequently mapping it onto the Floquet lattice to simulate its topological properties.To determine the Chern number of our Floquet-version model,we extend the energy pumping method proposed by Martin et al.[2017 Phys.Rev.X 7 041008]and the topological oscillation method introduced by Boyers et al.[2020 Phys.Rev.Lett.125 160505],followed by numerical simulations for both methodologies.The simulation results demonstrate the successful extraction of the Chern number using either of these methods,providing an excellent prediction of the phase diagram that closely aligns with the theoretical one derived from the original bilayer half Bernevig-Hughes-Zhang model.Finally,we briefly discuss a potential experimental implementation for our model.Our work demonstrates significant potential for simulating complex topological matter using quantum computing platforms,thereby paving the way for constructing a more universal simulator for non-interacting topological quantum states and advancing our understanding of these intriguing phenomena.

引用本文复制引用

基金项目

Innovation Program for Quantum Science and Technology(2021ZD0302401)

Hunan Provincial science Foundation for Distinguished Young Scholars(2021JJ10043)

Open Research Fund from State Key Laboratory of High Performance Computing of China(HPCL)(201901-09)

出版年

2024
中国物理快报(英文版)
中国科学院物理研究所,中国物理学会

中国物理快报(英文版)

CSTPCDCSCDEI
影响因子:0.515
ISSN:0256-307X
参考文献量33
段落导航相关论文