论文标题

在结构化环境的情况下,镁辅助光子波转换

Magnon-assisted photon-phonon conversion in the presence of the structured environments

论文作者

Qi, Shi-fan, Jing, Jun

论文摘要

量子转换或接口是量子信息处理和量子状态工程中最突出的协议之一。我们在包括微波光学模式,驱动的磁通模式和机械振动模式的混合磁机械系统中提出了一个光子 - phonon转换协议。光腔中的微波光子通过磁性 - 偶极相互作用耦合到磁子,后者通过磁性相互作用耦合到机械声子。通过强烈的光子 - 马格诺相互作用和磁杆上的强驱动,有效的哈密顿量被构建,以描述其共振点附近的光子和声子之间的转换。然后,腔磁通系统可以发挥量子内存的作用。此外,根据国家进化和国家独立转移的忠诚度估算了光子 - 光子转换的忠诚。考虑到光子,声子和镁元素的泄漏,在Lindblad主方程中讨论了前者。后者是由Heisenberg-Langevin方程式得出的,考虑到光学模式和机械模式的结构化环境中的非马克维亚噪声。发现国家进化的保真度对弱泄漏是可靠的。转移保真度可以通过光子的欧姆和亚欧姆环境来维持,并且对声子的$ 1/f $噪声不敏感。因此,我们的工作为微波处理中的光子 - 音波转换器提供了有趣的应用程序。

Quantum conversion or interface is one of the most prominent protocols in quantum information processing and quantum state engineering. We propose a photon-phonon conversion protocol in a hybrid magnomechanical system comprising a microwave optical mode, a driven magnon mode and a mechanical-vibrating mode. The microwave photons in the optical cavity are coupled to the magnons by the magnetic-dipole interaction, and the latter are coupled to the mechanical phonons by the magnetostrictive interaction. With strong photon-magnon interaction and strong driving on magnon, an effective Hamiltonian is constructed to describe the conversion between photons and phonons nearby their resonant point. The cavity-magnon system can then play the role of a quantum memory. Moreover, the faithfulness of the photon-phonon conversion is estimated in terms of fidelities for state evolution and state-independent transfer. The former is discussed in the Lindblad master equation taking account the leakages of photon, phonon and magnon into consideration. The latter is derived by the Heisenberg-Langevin equation considering the non-Markovian noise from the structured environments for both optical and mechanical modes. The state-evolution fidelity is found to be robust to the weak leakage. The transfer fidelity can be maintained by the Ohmic and sub-Ohmic environments of the photons and is insensitive to the $1/f$ noise of the phonons. Our work thus provides an interesting application for the magnon system as a photon-phonon converter in the microwave regime.

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