High-efficiency entanglement of microwave fields in cavity opto-magnomechanical systems

Author:

Di Ke1,Tan Shuai1,Wang LiyongORCID,Cheng Anyu1,Wang Xi1,Liu Yu1,Du Jiajia1

Affiliation:

1. Chongqing University of Post and Telecommunications

Abstract

We demonstrate a scheme to realize high-efficiency entanglement of two microwave fields in a dual opto-magnomechanical system. The magnon mode simultaneously couples with the microwave cavity mode and phonon mode via magnetic dipole interaction and magnetostrictive interaction, respectively. Meanwhile, the phonon mode couples with the optical cavity mode via radiation pressure. Each magnon mode and optical cavity mode adopts a strong red detuning driving field to activate the beam splitter interaction. Therefore, the entangled state generated by the injected two-mode squeezed light in optical cavities can be eventually transferred into two microwave cavities. A stationary entanglement E a 1 a 2 =0.54 is obtained when the input two-mode squeezed optical field has a squeezing parameter r = 1. The entanglement E a 1 a 2 increases as the squeezing parameter r increases, and it shows the flexible tunability of the system. Meanwhile, the entanglement survives up to an environmental temperature about 385 mK, which shows high robustness of the scheme. The proposed scheme provides a new mechanism to generate entangled microwave fields via magnons, which enables the degree of the prepared microwave entanglement to a more massive scale. Our result is useful for applications which require high entanglement of microwave fields like quantum radar, quantum navigation, quantum teleportation, quantum wireless fidelity (Wi-Fi) network, etc.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Science and Technology Research Program of Chongqing Municipal Education Commission

Postdoctoral Applied Research Program of Qingdao

Postdoctoral Applied Innovation Program of Shandong

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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