Topology optimization of high-performance optomechanical resonator

Fuente: arXiv
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Main Authors: Shi, Yincheng, Wang, Fengwen, Høj, Dennis, Sigmund, Ole, Andersen, Ulrik Lund
Format: Preprint
Published: 2024
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author Shi, Yincheng
Wang, Fengwen
Høj, Dennis
Sigmund, Ole
Andersen, Ulrik Lund
author_facet Shi, Yincheng
Wang, Fengwen
Høj, Dennis
Sigmund, Ole
Andersen, Ulrik Lund
contents High quality mechanical resonators are critical for driving advances in quantum information technologies, precision sensing, and optomechanics. However, achieving compact resonator designs that maintain high performance is a key challenge. In this study, we present a new class of compact resonators optimized to operate at higher-order eigenmodes, achieving both high frequencies and enhanced quality factor-frequency (Qf) products. By employing topology optimization to maximize the damping dilution factor, these resonators achieve minimized edge bending losses and enhanced intrinsic damping. Their high-(Qf) performance and compact form factor position these resonators as promising candidates for applications in quantum information transduction, advanced optomechanical systems, and next-generation sensing technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2412_14102
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Topology optimization of high-performance optomechanical resonator
Shi, Yincheng
Wang, Fengwen
Høj, Dennis
Sigmund, Ole
Andersen, Ulrik Lund
Quantum Physics
High quality mechanical resonators are critical for driving advances in quantum information technologies, precision sensing, and optomechanics. However, achieving compact resonator designs that maintain high performance is a key challenge. In this study, we present a new class of compact resonators optimized to operate at higher-order eigenmodes, achieving both high frequencies and enhanced quality factor-frequency (Qf) products. By employing topology optimization to maximize the damping dilution factor, these resonators achieve minimized edge bending losses and enhanced intrinsic damping. Their high-(Qf) performance and compact form factor position these resonators as promising candidates for applications in quantum information transduction, advanced optomechanical systems, and next-generation sensing technologies.
title Topology optimization of high-performance optomechanical resonator
topic Quantum Physics
url https://arxiv.org/abs/2412.14102