Long-lived quantum coherent dynamics of a $\Lambda$-system driven by a thermal environment
Suyesh Koyu, Timur V. Tscherbul

TL;DR
This paper theoretically demonstrates that thermal environments can induce long-lived quantum coherence in a three-level $$ system, revealing regimes of persistent coherence without coherent driving, relevant for photosynthesis and quantum heat engines.
Contribution
It provides analytical solutions for coherence dynamics in a thermal-driven $$ system and classifies dynamical regimes, highlighting noise-induced long-lived quantum coherence.
Findings
Long-lived coherence persists for $ au_c \,\simeq\, 1/r$ in underdamped regime.
Coherent quasi-steady states emerge with lifetime $ au_{c} = 1.34 (r/\Delta^{2})$ in overdamped regime.
Thermal excitations can generate observable quantum coherence without coherent driving.
Abstract
We present a theoretical study of quantum coherent dynamics of a three-level system driven by a thermal environment (such as blackbody radiation), which serves as an essential building block of photosynthetic light-harvesting models and quantum heat engines. By solving the nonsecular Bloch-Redfield master equations, we obtain analytical results for the ground-state population and coherence dynamics and classify the dynamical regimes of the incoherently driven -system as underdamped and overdamped depending on whether the ratio is greater or less than one, where is the ground-state energy splitting, is the incoherent pumping rate, and is a function of the transition dipole alignment parameter . In the underdamped regime, we observe long-lived coherent dynamics that lasts for , even though the initial state of…
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