Controlling photothermal forces and backaction in nano-optomechanical resonators through strain engineering

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Main Authors: Jansen, Menno H., Kersul, Cauê M., Verhagen, Ewold
Format: Preprint
Published: 2025
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author Jansen, Menno H.
Kersul, Cauê M.
Verhagen, Ewold
author_facet Jansen, Menno H.
Kersul, Cauê M.
Verhagen, Ewold
contents In micro- and nanoscale optomechanical systems, radiation pressure interactions are often complemented or impeded by photothermal forces arising from thermal strain induced by optical heating. We show that the sign and magnitude of the photothermal force can be engineered through deterministic nanoscale structural design, by considering the overlap of temperature and modal strain profiles. We demonstrate this capability experimentally in a specific system: a nanobeam zipper cavity by changing the geometry of its supporting tethers. A single design parameter, corresponding to a nanoscale geometry change, controls the magnitude of the photothermal backaction and even its sign. These insights will allow engineering the combined photothermal and radiation pressure forces in nano-optomechanical systems, such that backaction-induced linewidth variations are deterministically minimized if needed, or maximized for applications that require cooling or amplification at specific laser detuning.
format Preprint
id arxiv_https___arxiv_org_abs_2512_21197
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Controlling photothermal forces and backaction in nano-optomechanical resonators through strain engineering
Jansen, Menno H.
Kersul, Cauê M.
Verhagen, Ewold
Optics
Mesoscale and Nanoscale Physics
Quantum Physics
In micro- and nanoscale optomechanical systems, radiation pressure interactions are often complemented or impeded by photothermal forces arising from thermal strain induced by optical heating. We show that the sign and magnitude of the photothermal force can be engineered through deterministic nanoscale structural design, by considering the overlap of temperature and modal strain profiles. We demonstrate this capability experimentally in a specific system: a nanobeam zipper cavity by changing the geometry of its supporting tethers. A single design parameter, corresponding to a nanoscale geometry change, controls the magnitude of the photothermal backaction and even its sign. These insights will allow engineering the combined photothermal and radiation pressure forces in nano-optomechanical systems, such that backaction-induced linewidth variations are deterministically minimized if needed, or maximized for applications that require cooling or amplification at specific laser detuning.
title Controlling photothermal forces and backaction in nano-optomechanical resonators through strain engineering
topic Optics
Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2512.21197