<div class="csl-bib-body">
<div class="csl-entry">Puglia, D., Odessey, R., Burns, P. S., Luhmann, N., Schmid, S., & Higginbotham, A. P. (2025). Room Temperature, Cavity-Free Capacitive Strong Coupling to Mechanical Motion. <i>Nano Letters</i>, <i>25</i>(7), 2749–2755. https://doi.org/10.1021/acs.nanolett.4c05796</div>
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dc.identifier.issn
1530-6984
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/215646
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dc.description.abstract
The back-action damping of mechanical motion by electromagnetic radiation is typically overwhelmed by internal loss channels unless demanding experimental ingredients such as superconducting resonators, high-quality optical cavities, or large magnetic fields are employed. Here we demonstrate the first room temperature, cavity-free, all-electric device where back-action damping exceeds internal loss, enabled by a mechanically compliant parallel-plate capacitor with a nanoscale plate separation and an aspect ratio exceeding 1,000. The device has 4 orders of magnitude lower insertion loss than a comparable commercial quartz crystal and achieves a position imprecision rivaling optical interferometers. With the help of a back-action isolation scheme, we observe radiative cooling of mechanical motion by a remote cryogenic load. This work provides a technologically accessible route to high-precision sensing, transduction, and signal processing.
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dc.language.iso
en
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dc.publisher
AMER CHEMICAL SOC
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dc.relation.ispartof
Nano Letters
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dc.subject
electromechanics
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dc.subject
membrane
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dc.subject
optomechanics
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dc.subject
sensing
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dc.title
Room Temperature, Cavity-Free Capacitive Strong Coupling to Mechanical Motion