Non-Hermitian Fermi-Dirac Distribution in Persistent Current Transport

ORAL

Abstract

Persistent currents circulate continuously without requiring external power sources. Here, we extend their theory to include dissipation within the framework of non-Hermitian quantum Hamiltonians. Using Green's function formalism, we introduce a non-Hermitian Fermi-Dirac distribution and derive an analytical expression for the persistent current that relies solely on the complex spectrum. We apply our formula to two dissipative models supporting persistent currents: (i) a phase-biased superconducting-normal-superconducting junction; (ii) a normal ring threaded by a magnetic flux. We show that the persistent currents in both systems exhibit no anomalies at any emergent exceptional points, whose signatures are only discernible in the current susceptibility. We validate our findings by exact diagonalization and extend them to account for finite temperatures and interaction effects. Our formalism offers a general framework for computing quantum many-body observables of non-Hermitian systems in equilibrium, with potential extensions to nonequilibrium scenarios.

*This work is supported by the Foundation for Polish Science project MagTop (No. FENG.02.01-IP.05-0028/23) co-financed by the European Union from the funds of Priority 2 of the European Funds for a Smart Economy Program 2021–2027 (FENG) and by the National Science Centre (Poland) OPUS Grant No. 2021/41/B/ST3/04475. P.-X. S. and Z. L. acknowledge support from the Tsinghua University Dushi Program and Shanghai Qi Zhi Institute. J. L. L. acknowledges the computational resources provided by the Aalto Science-IT project and the financial support from the Academy of Finland Projects No. 331342 and No. 358088. P.-X. S. acknowledges additional support from the European Union's Horizon Europe research and innovation programme under the Marie Skłodowska-Curie Grant Agreement No. 101180589 (SymPhysAI). Views and opinions expressed are however those of the author(s) only and do not necessarily reflect those of the European Union or the European Research Executive Agency. Neither the European Union nor the granting authority can be held responsible for them.

Publication: P.-X. Shen, Z. Lu, J. L. Lado, and M. Trif, Non-Hermitian Fermi-Dirac Distribution in Persistent Current Transport, Phys. Rev. Lett. 133, 086301 (2024).

Presenters

  • Peixin Shen

    • Institute of Physics, Polish Academy of Sciences

Authors

  • Peixin Shen

    • Institute of Physics, Polish Academy of Sciences
  • Zhide Lu

    • Tsinghua University
  • Jose Lado

    • Aalto University
  • Mircea Trif

    • Institute of Physics, Polish Academy of Sciences