Entanglement Hamiltonian and effective temperature of non-Hermitian quantum spin ladders

ORAL

Abstract

Quantum entanglement plays a crucial role not only in understanding Hermitian many-body systems but also in offering valuable insights into non-Hermitian quantum systems. In this paper, we analytically investigate the entanglement Hamiltonian and entanglement energy spectrum of a non-Hermitian spin ladder using perturbation theory in the biorthogonal basis. Specifically, we examine the entanglement properties between coupled non-Hermitian quantum spin chains. In the strong coupling limit (Jrung≫1), first-order perturbation theory reveals that the entanglement Hamiltonian closely resembles the single-chain Hamiltonian with renormalized coupling strengths, allowing for the definition of an ad hoc temperature. Our findings provide new insights into quantum entanglement in non-Hermitian systems and offer a foundation for developing novel approaches for studying finite temperature properties in non-Hermitian quantum many-body systems.

*YCT is grateful to the support from National Science and Technology Council (NSTC) of Taiwan under grant No. 113-2112-M-A49-015-MY3.

Publication: Pei-Yun Yang and Yu-Chin Tzeng, arXiv:2409.17062

Presenters

  • Yu-Chin Tzeng

    • National Yang Ming Chiao Tung University

Authors

  • Pei-Yun Yang

    • National Taiwan University
  • Yu-Chin Tzeng

    • National Yang Ming Chiao Tung University