Polaromechanics: cavity-magnon polaritons strongly coupled to phonons
Abstract
Building hybrid quantum systems is a crucial step for realizing multifunctional quantum technologies, quantum information processing, and hybrid quantum networks. A functional hybrid quantum system requires strong coupling among its components. However, couplings between distinct physical systems are typically very weak. Experimental realization of strong coupling in a hybrid system remains a long-standing challenge, especially when it has multiple components and the components are of different nature. Here we demonstrate the realization of triple strong coupling in a novel {\it polaromechanical} hybrid system, where polaritons, formed by strongly coupled ferromagnetic magnons and microwave photons, are further strongly coupled to phonons. The corresponding polaromechanical normal-mode splitting is observed. A high polaromechanical cooperativity of is achieved by significantly reducing the polariton decay rate via exploiting coherent perfect absorption. The quantum cooperativity much greater than unity is achievable if placing the system at cryogenic temperatures, which would enable various quantum applications. Our results pave the way towards coherent quantum control of photons, magnons and phonons, and are a crucial step for building functional hybrid quantum systems based on magnons.
Keywords
Cite
@article{arxiv.2307.11328,
title = {Polaromechanics: cavity-magnon polaritons strongly coupled to phonons},
author = {Rui-Chang Shen and Jie Li and Yi-Ming Sun and Wei-Jiang Wu and Xuan Zuo and Yi-Pu Wang and Shi-Yao Zhu and J. Q. You},
journal= {arXiv preprint arXiv:2307.11328},
year = {2025}
}
Comments
To appear in Nature Comm