Manipulating the nonreciprocal microwave transmission by using a pump-induced magnon mode

Author:

Chen Zhijian12ORCID,Rao Jinwei13ORCID,Zhao K. X.1,Yang Fan1,Wang C. X.1ORCID,Yao Bimu12ORCID,Lu Wei12ORCID

Affiliation:

1. School of Physical Science and Technology, ShanghaiTech University 1 , Shanghai 201210, China

2. State Key Laboratory of Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences 2 , Shanghai 200083, China

3. School of Physics, Shandong University 3 , Jinan 250100, China

Abstract

We realize the electromagnetic regulation of nonreciprocal microwave transmission by introducing a pump-induced magnon mode (PIM) into a cavity magnonic device with dissipative photon–magnon coupling. As a peculiar spin wave, the PIM's dynamic properties, including its spin number and resonant frequency, can be easily tuned by the microwave pump. Hence, it facilitates the precise control of the coupling process between the PIM and the cavity magnonic device by regulating the pump signal. Along with these manipulations, the nonreciprocal microwave transmission produced by the dissipative photon–magnon coupling is regulated without reconfiguring the system. In the experiment, we achieve a pump-controlled nonreciprocal bandwidth of 16 MHz and a pump-tunable isolation range of up to 40 dB. Our work demonstrates the control of a microwave with another microwave. It has a great potential in the design of fast microwave switches and programmable isolators for information processing.

Funder

Strategic Priority Research Program of the Chinese Academy of Sciences

National Natural Science Foundation of China

STCSM

Youth Innovation Promotion Association of CAS

the Strategic Priority Research Program of CAS

the National Key R&D Program of China

the SITP Independent Foundation; the Shanghai Pujiang Program

Qilu Young Scholar Programs of Shandong University

Publisher

AIP Publishing

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