Unconventional photon blockade in a hybrid optomechanical system with an embedded spin-triplet

Fuente: arXiv
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Main Authors: Dong, Yao, Wang, Jing-jing, Zhang, Guo-Feng
Format: Preprint
Published: 2025
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_version_ 1866916853876523008
author Dong, Yao
Wang, Jing-jing
Zhang, Guo-Feng
author_facet Dong, Yao
Wang, Jing-jing
Zhang, Guo-Feng
contents The research article studies the unconventional photon blockade effect in a hybrid optomechanical system with an embedded spin-triplet state. The interaction between the optomechanical system and the spin state generates new transition paths for the destructive quantum interference of the two-photon excitation state. By analytically solving the Schrodinger equation and numerically simulating the master equation, it can be found that the modulated mechanical dissipation is essential for achieving the strong photon blockade in our system. Unlike the conventional cavity optomechanical system, the second-order correlation function g(2)(0) =0 can be obtained with the weak single-photon optomechanical coupling. By adjusting the system parameters, the strong photon blockade and the single-photon resonance can coincide, which indicates the hybrid system has the potential to be a high-quality and efficient single-photon source. Finally, the influence of the thermal noise on photon blockade is investigated. The results show that the second-order correlation function is more robust for the weaker phonon-spin coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2507_15605
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unconventional photon blockade in a hybrid optomechanical system with an embedded spin-triplet
Dong, Yao
Wang, Jing-jing
Zhang, Guo-Feng
Quantum Physics
The research article studies the unconventional photon blockade effect in a hybrid optomechanical system with an embedded spin-triplet state. The interaction between the optomechanical system and the spin state generates new transition paths for the destructive quantum interference of the two-photon excitation state. By analytically solving the Schrodinger equation and numerically simulating the master equation, it can be found that the modulated mechanical dissipation is essential for achieving the strong photon blockade in our system. Unlike the conventional cavity optomechanical system, the second-order correlation function g(2)(0) =0 can be obtained with the weak single-photon optomechanical coupling. By adjusting the system parameters, the strong photon blockade and the single-photon resonance can coincide, which indicates the hybrid system has the potential to be a high-quality and efficient single-photon source. Finally, the influence of the thermal noise on photon blockade is investigated. The results show that the second-order correlation function is more robust for the weaker phonon-spin coupling.
title Unconventional photon blockade in a hybrid optomechanical system with an embedded spin-triplet
topic Quantum Physics
url https://arxiv.org/abs/2507.15605