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Entanglement enhancement and EPR steering based on a PT-symmetric-like cavity-opto-magnomechanical hybrid system

Yi‐Xiong Luo, Long‐Jiang Cong, Zhigang Zheng, Hong‐Yu Liu, Ying Ming, Rong‐Can Yang

2023Optics Express17 citationsDOIOpen Access PDF

Abstract

We investigate the enhancement of entanglement and EPR steering in a parity-time(PT-) symmetric-like cavity-opto-magnomechanical system. The system consists of an optical cavity, a magnon mode in a ferromagnetic crystal, a phonon mode, and a microwave cavity. Our findings demonstrate that microwave-cavity gain significantly boosts distant quantum entanglement and greatly improves the robustness of bipartite entanglement against environment temperature. Additionally, we observe an enhancement of tripartite entanglement within the system and uncover the phenomenon of entanglement transfer. Notably, we also achieve one-way steering and two-way asymmetric steering in the system. This study offers insights into the integration of traditional optomechanics and cavity magnomechanics, presenting a novel approach to manipulate asymmetric quantum steering between two distant macroscopic objects. The implications of our research extend to the fields of quantum state preparation and quantum information.

Topics & Concepts

Quantum entanglementOptomechanicsPhysicsQuantumQuantum sensorRobustness (evolution)Quantum informationEPR paradoxQuantum information scienceQuantum opticsOpticsQuantum mechanicsQuantum networkBiochemistryGeneChemistryMechanical and Optical ResonatorsQuantum Information and CryptographyQuantum Mechanics and Non-Hermitian Physics
Entanglement enhancement and EPR steering based on a PT-symmetric-like cavity-opto-magnomechanical hybrid system | Litcius