Piezomechanical scattering loss in electro-optics quantum transducers

Fuente: arXiv
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Auteurs principaux: Zhang, Mai, Xu, Xin-Biao, Li, Ming, Wang, Jia-Qi, Guo, Guang-Can, Zou, Chang-Ling
Format: Preprint
Publié: 2025
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author Zhang, Mai
Xu, Xin-Biao
Li, Ming
Wang, Jia-Qi
Guo, Guang-Can
Zou, Chang-Ling
author_facet Zhang, Mai
Xu, Xin-Biao
Li, Ming
Wang, Jia-Qi
Guo, Guang-Can
Zou, Chang-Ling
contents Quantum transduction between microwave and optical photons is essential for building scalable quantum networks, with electro-optics conversion emerging as a promising approach. Recent experiments, however, observe significant quality factor degradation in superconducting microwave cavities when realizing the electro optics transducers. Here, we identify the piezomechanical scattering, where microwave photon loss through phonon radiation into substrate, as a universal dissipation mechanism in these hybrid quantum devices. By establishing a direct analogy to Rayleigh scattering theory, we derive universal scaling laws governing phononic dissipation process. Our analysis reveals a fundamental trade-off that optimizing coherent transduction coupling inevitably increases dissipation, regardless of the configurations of microwave and optical cavities. We propose potential strategies to overcome this challenge. These findings establish piezomechanical scattering as a critical design constraint for quantum transducers and provide insights to optimize their performances toward practical quantum networking.
format Preprint
id arxiv_https___arxiv_org_abs_2509_19826
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Piezomechanical scattering loss in electro-optics quantum transducers
Zhang, Mai
Xu, Xin-Biao
Li, Ming
Wang, Jia-Qi
Guo, Guang-Can
Zou, Chang-Ling
Quantum Physics
Optics
Quantum transduction between microwave and optical photons is essential for building scalable quantum networks, with electro-optics conversion emerging as a promising approach. Recent experiments, however, observe significant quality factor degradation in superconducting microwave cavities when realizing the electro optics transducers. Here, we identify the piezomechanical scattering, where microwave photon loss through phonon radiation into substrate, as a universal dissipation mechanism in these hybrid quantum devices. By establishing a direct analogy to Rayleigh scattering theory, we derive universal scaling laws governing phononic dissipation process. Our analysis reveals a fundamental trade-off that optimizing coherent transduction coupling inevitably increases dissipation, regardless of the configurations of microwave and optical cavities. We propose potential strategies to overcome this challenge. These findings establish piezomechanical scattering as a critical design constraint for quantum transducers and provide insights to optimize their performances toward practical quantum networking.
title Piezomechanical scattering loss in electro-optics quantum transducers
topic Quantum Physics
Optics
url https://arxiv.org/abs/2509.19826