arXiv · 2111.05554
Decoherence control of a single-photon optomechanical system in phase-sensitive reservoirs
Abstract
Recent advancements in strong single-photon optomechanical coupling also demand a deeper understanding of environmental interactions in this regime.In this regime the standard Lindblad master equation, which is derived in the eigenbasis of the bare optical and mechanical modes, misassigns the dephasing rate. We therefore use the Dressed-State Master Equation (DSME), which is formulated in the eigenbasis of the strongly coupled photon-phonon Hamiltonian, the dressed states of the system. This work investigates the impact of squeezed vacuum and thermal reservoirs on the decoherence of cavity photon Fock states in the strong coupling regime. We demonstrate that decoherence can be effectively controlled by tuning reservoir parameters, with the control mediated through a cavity dephasing term that becomes significant at high temperatures. The findings presented provide critical insights into reservoir engineering for precise control of quantum decoherence, advancing the understanding of strongly coupled optomechanical systems in engineered environments.
Explore related subjects
Keep this discovery
Vaibhav N Prakash, Aranya Bhuti Bhattacherjee. 2021-11-10. Decoherence control of a single-photon optomechanical system in phase-sensitive reservoirs. https://arxiv.org/abs/2111.05554
Cite the original work for its findings. Save a collection to share your selection of sources.