Invariant-based master equation applied to driven qutrit coupled to a bath and a leaky cavity
Abstract
We employ a generalized approach to the master equation for driven open -level () quantum systems using Lewis-Riesenfeld invariants, which avoids the driving-strength restrictions inherent to conventional approaches. We show that the invariant-based master equation provides a unifying generalized framework, which reduces to the frequently employed laboratory-frame master equations and the less frequently employed rotating-frame master equation framework under appropriate simplifications. Extending the prototypical two-level system, we show that the inclusion of another state coupled to the ground state via reservoir-induced dephasing gives rise to qualitatively new dissipative behaviors that are, in general, not captured by standard approximations. We also apply the invariant-based master equation framework to a driven quantum dot coupled to a leaky cavity, demonstrating the framework's ability to capture relevant dissipative dynamics without additional assumptions. Our work paves the way for quantum-control applications in the presence of dissipation.
Keywords
Cite
@article{arxiv.2607.25005,
title = {Invariant-based master equation applied to driven qutrit coupled to a bath and a leaky cavity},
author = {Sagarika Basak and A. Javadi and D. Blume},
journal= {arXiv preprint arXiv:2607.25005},
year = {2026}
}
Comments
25 pages, 8 figures