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Liouvillian analysis of dynamics at exceptional points incorporating quantum jumps

Research Project

Project/Area Number 22K03473
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeMulti-year Fund
Section一般
Review Section Basic Section 13010:Mathematical physics and fundamental theory of condensed matter physics-related
Research InstitutionOsaka Metropolitan University

Principal Investigator

ガーモン サバンナスターリング  大阪公立大学, 大学院理学研究科, 准教授 (30733860)

Project Period (FY) 2022-04-01 – 2025-03-31
Project Status Granted (Fiscal Year 2023)
Budget Amount *help
¥4,160,000 (Direct Cost: ¥3,200,000、Indirect Cost: ¥960,000)
Fiscal Year 2024: ¥1,170,000 (Direct Cost: ¥900,000、Indirect Cost: ¥270,000)
Fiscal Year 2023: ¥1,170,000 (Direct Cost: ¥900,000、Indirect Cost: ¥270,000)
Fiscal Year 2022: ¥1,820,000 (Direct Cost: ¥1,400,000、Indirect Cost: ¥420,000)
Keywordsexceptional point / microscopic dynamics / structured reservoir / weak-coupling states / non-Markovian dynamics / Liouvillian / topological insulator / Lindblad / Exceptional point / Lindblad operator / non-Hermitian physics / quantum jump
Outline of Research at the Start

This proposal has three main objectives that will be implemented consecutively as follows.
1) I will analyze the influence of quantum jump processes on two basic types of EPs, one involving the appearance of a resonance and one involving the coalescence of two existing resonances.
2) Extend the analysis to the case of an anomalous-order EP occurring directly at the continuum threshold in certain 1-D systems
3) Develop a general theory for dynamics near exceptional points in quantum systems accounting for quantum jump processes.

Outline of Annual Research Achievements

I have made progress on two tracks related to the dynamics at the exceptional point (EP). The original intention was to study the dynamics at the EP at the level of the Liouvillian based on the Lindblad operator formalism. However, the first track focuses on the dynamics at the Hamiltonian level.

(1) I have continued my studies on the semi-infinite Su-Schrieffer-Heeger (SSH) model with an attached quantum emitter. I have found that in the topologically non-trivial phase of the SSH reservoir, two unique parameter regimes appear with non-conventional physics. In one of these regimes, a pair of bound states appears for weak coupling. (Normally, bound states only appear in the strong coupling regime.) Further, an exceptional point separates the regime of non-conventional physics from the conventional regime. We have obtained an analytic approximation for the dynamics in this case that demonstrates both Markovian and non-Markovian dynamics.

(2) I have come to realize that Lindblad formalism probably can't be applied to the dynamics of a true open quantum system because Lindblad is a Markovian procedure while the open system necessarily introduces non-Markovian dynamics. Hence I have instead begun a project studying the dynamics in a Liouvillian system working from first principles. This is a challenging project and it is still in the early stages, but it seems quite promising.

Current Status of Research Progress
Current Status of Research Progress

3: Progress in research has been slightly delayed.

Reason

The project is a bit delayed because the focus has changed somewhat. The calculation of the Liouviliian dynamics under track (2) is much more challenging than the original objective, but should yield interesting results.

Then under track (1) the calculation of the dynamics at the exceptional point in the topologically non-trivial SSH chain has proved challenging as well, but we have finally obtained a solution. We are presently writing a paper to present these results.

Strategy for Future Research Activity

Under track (1), I will analyze the dynamics at the pair of bound states appearing in the weak coupling regime. In the case of wide separation of the bound states from the band edges of the two SSH bands, this should result in an anomalous regime of sub-radiant dynamics. In the case that the bound states approach the edges of the SSH bands, according to my previous works [Garmon, 2013] this should induce non-Markovian dynamics.

Under track (2), I will establish the formalism needed to analyze the dynamics at an open quantum system without employing a Markovian approximation.

Report

(2 results)
  • 2023 Research-status Report
  • 2022 Research-status Report
  • Research Products

    (10 results)

All 2024 2023 2022 Other

All Int'l Joint Research (2 results) Journal Article (2 results) (of which Int'l Joint Research: 2 results,  Peer Reviewed: 1 results,  Open Access: 1 results) Presentation (6 results) (of which Int'l Joint Research: 1 results,  Invited: 1 results)

  • [Int'l Joint Research] Butler University(米国)

    • Related Report
      2023 Research-status Report
  • [Int'l Joint Research] Butler University(米国)

    • Related Report
      2022 Research-status Report
  • [Journal Article] Enhanced Classical Radiation Damping of Electronic Cyclotron Motion in the Vicinity of the Van Hove Singularity in a Waveguide2024

    • Author(s)
      Goto Yuki、Garmon Savannah、Petrosky Tomio
    • Journal Title

      Progress of Theoretical and Experimental Physics

      Volume: 2024 Issue: 3 Pages: 1-25

    • DOI

      10.1093/ptep/ptae021

    • Related Report
      2023 Research-status Report
    • Peer Reviewed / Open Access / Int'l Joint Research
  • [Journal Article] Symmetry gives rise to an elegant catastrophe2023

    • Author(s)
      Garmon Savannah
    • Journal Title

      Nature Physics

      Volume: 19 Issue: 8 Pages: 1073-1074

    • DOI

      10.1038/s41567-023-02055-x

    • Related Report
      2023 Research-status Report
    • Int'l Joint Research
  • [Presentation] Non-exponential dynamics near the continuum threshold: bound states, anti-bound states and exceptional points2024

    • Author(s)
      Savannah Garmon
    • Organizer
      Stat&QuantPhys Winter School 2024 (SQP2024)
    • Related Report
      2023 Research-status Report
    • Invited
  • [Presentation] Topological exceptional point and spectral properties of a quantum emitter attached to a semi-infinite reservoir with chiral sublattice symmetry2023

    • Author(s)
      Savannah Garmon, Kenichi Noba, Gonzalo Ordonez, Federico Roccati
    • Organizer
      StatPhys28
    • Related Report
      2023 Research-status Report
  • [Presentation] Dynamics of a quantum emitter coupled to a topological structured reservoir2023

    • Author(s)
      Savannah Garmon
    • Organizer
      POS&BYD: Physics of Open Systems and Beyond
    • Related Report
      2023 Research-status Report
  • [Presentation] Topologically-protected states and their dynamical influence in structured reservoirs with chiral sublattice symmetry2023

    • Author(s)
      Savannah Garmon
    • Organizer
      American Physical Society March Meeting 2023
    • Related Report
      2022 Research-status Report
    • Int'l Joint Research
  • [Presentation] Reservoir-assisted symmetry breaking and coalesced zero-energy modes in an open PT-symmetric SSH model2022

    • Author(s)
      Savannah Garmon, Kenichi Noba
    • Organizer
      Non-Hermitian Quantum Mechanics 2022
    • Related Report
      2022 Research-status Report
  • [Presentation] Localization, topology and symmetry-breaking properties of an open PT-symmetric Su-Schrieffer-Heeger model2022

    • Author(s)
      Savannah Garmon, Kenichi Noba
    • Organizer
      Localisation 2022
    • Related Report
      2022 Research-status Report

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Published: 2022-04-19   Modified: 2024-12-25  

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