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中国物理学会期刊

基于原子-腔光磁机械混合系统的光学双稳态研究

Optical Bistability Study Based on Atomic-Cavity Opto-Magneto-Mechanical Hybrid Systems

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  • 本文提出了一种原子-腔光磁机械混合系统中磁振子与光学双稳态的调控理论模型。系统是由微波腔、磁振子、机械振子及原子系综构成,相互之间通过磁致伸缩耦合、光辐射压力及原子能级跃迁等作用相互耦合。基于含耗散与噪声项的量子朗之万方程求解,推导得到磁振子数与光子数的稳态解析解,通过数值结果解析证实了系统的双稳态特性。研究结果表明,两类双稳态均可通过耦合强度、失谐量及耗散系数实现精准调控;原子模式能够优化系统的可调谐性,临界驱动点的瞬时跃迁为开关效应提供了物理基础。本研究丰富了光磁机械混合系统的理论研究,为可调谐磁光器件及量子信息处理设备的研发提供了可靠的理论支撑,具有重要的理论研究价值和潜在的工程应用前景。

    Optical bistability is a crucial nonlinear optical phenomena that is integral to all-optical switching, photonic logic systems, and quantum information processing. This paper systematically examines the cooperative regulation mechanism of magnon bistability and optical bistability in a hybrid atom-cavity opto-magneto-mechanical system. This system comprises a microwave cavity, a magnon mode supported by yttrium iron garnet (YIG) crystal, a mechanical phonon mode, dual coupled optical cavities, and a two-level atomic ensemble. Multi-mode coupling is achieved through magnetostrictive interaction, optical radiation pressure, and atomic dipole-cavity coupling, addressing the issues of limited tuning freedom and weak nonlinear response in traditional optomechanical systems. Utilizing the whole quantum Hamiltonian of the system, we formulate the quantum Langevin equations incorporating dissipation and quantum noise factors, and extract the steady-state analytical solutions for magnon population and optical cavity photon number under robust driving circumstances. Numerical simulations are conducted using experimentally viable parameters to examine the influence of coupling strengths, mode detunings, and dissipation coefficients on the threshold, hysteresis breadth, and steady-state amplitude of magnon and optical bistability. The findings indicate that both magnon and optical bistability can be accurately controlled by modifying essential system parameters. The incorporation of an atomic ensemble introduces an additional nonlinear interaction pathway, thereby substantially improving the tunability and stability of the hybrid system. Furthermore, the sudden state transition at the critical driving point offers a robust physical foundation for the development of high-speed magneto-optical switching devices. This study elucidates the multi-mode coupling synergistic mechanism underlying bistable responses in atom-cavity opto-magneto-mechanical systems, establishes comprehensive quantitative regulation principles for bistable characteristics, enhances the foundational theory of hybrid opto-magneto-mechanical systems, and offers robust theoretical support for the design and development of tunable, low-threshold, and high-stability magneto-optical devices. This research holds significant theoretical value and extensive engineering application potential in quantum information processing, microwave-optical signal transduction, and high-precision quantum sensing.

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