Published May 17, 2024 | Version v1
Journal article

Periodically driven open quantum systems: Spectral properties and nonequilibrium steady states

  • 1. Department of Physics, Princeton University, New Jersey 08544, USA
  • 2. Department of Electrical and Computer Engineering, Princeton University, New Jersey 08544, USA
  • 3. Institute for Advanced Study, Tsinghua University, Beijing 100084, China
  • 4. Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay Road, Kowloon, Hong Kong, China
  • 5. Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
  • 6. School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China
  • 7. Department of Physics, Stanford University, Stanford, California 94305, USA
  • 8. School of Natural Sciences, Institute for Advanced Study, Princeton, New Jersey 08540, USA

Description

In this paper, we investigate periodically driven open quantum systems within the framework of Floquet-Lindblad master equations. Specifically, we discuss Lindblad master equations in the presence of a coherent, time-periodic driving and establish their general spectral features. We also clarify the notions of transient and nondecaying solutions from this spectral perspective, and then prove that any physical system described by a Floquet-Lindblad equation must have at least one physical nonequilibrium steady state (NESS), corresponding to an eigenoperator of the Floquet-Lindblad evolution superoperator UF with unit eigenvalue. Since the Floquet-Lindblad formalism encapsulates the entire information regarding the NESS, it in principle enables us to obtain nonlinear effects to all orders at once. The Floquet-Lindblad formalism thus provides a powerful tool for studying driven-dissipative solid-state systems, which we illustrate by deriving the nonlinear optical response of a simple two-band model of an insulating solid and comparing it with prior results established through Keldysh techniques.

Additional details

Identifiers

DOI
10.1103/PhysRevB.109.184309;
arXiv
arXiv:2401.00131;
Crossref Funder ID
10.13039/501100005950; 10.13039/501100002920; 10.13039/100000001; 10.13039/501100001809; 10.13039/100006132; 10.13039/100006208;

Publishing Information

Journal Title
Physical Review B
Journal Volume
109
Journal Issue
18
Journal Page Range
17 pgs.
ISSN
1550-235X

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
SRFS2324-6S01; DMR-2141966; 12125405; DE-SC0009988
Notes
Contact Email: chen.hao@princeton.edu; Contact Email: Corresponding author: daix@ust.hk; Record automatically processed
Funding organization
Hong Kong University of Science and Technology; Research Grants Council, University Grants Committee; National Science Foundation; National Natural Science Foundation of China; Office of Science; High Energy Physics