English

Inverse-designed release-free optomechanical crystal with high photon-phonon coupling

Optics 2026-05-06 v1 Quantum Physics

Abstract

Interactions between light and mechanics provide a powerful interface between optical and microwave-frequency signals, with applications spanning classical signal processing and quantum technologies. High-performance optomechanical devices require both strong photon-phonon coupling and tolerance to parasitic laser heating. Release-free optomechanical crystals provide improved thermal anchoring compared to suspended nanobeams, but have so far exhibited weaker vacuum optomechanical coupling rates, leaving a trade-off between coupling strength and thermal robustness. Here, we largely close this gap: we design and experimentally demonstrate a release-free silicon optomechanical crystal with a record vacuum optomechanical coupling rate of about gOM/(2π)=800g_\text{OM} / (2 \pi) = 800 kHz, comparable to suspended state-of-the-art devices. The resulting optomechanical scattering rate ΓOM/(2π)=1.1\Gamma_\text{OM}/(2 \pi)= 1.1 kHz is nearly twice that of previous release-free implementations. This performance is achieved by combining physics-guided human intuition with a multiphysics inverse-design algorithm introduced here for resonant optomechanical structures. Beyond the specific device demonstrated, the inverse-design framework is applicable to co-optimizing optical and mechanical resonances and eigenmodes more broadly. These results strengthen release-free optomechanical crystals as a platform for fast, low-noise classical and quantum optomechanics.

Keywords

Cite

@article{arxiv.2605.03910,
  title  = {Inverse-designed release-free optomechanical crystal with high photon-phonon coupling},
  author = {David Hambraeus and Paul Burger and Johan Kolvik and Philippe Tassin and Raphaël Van Laer},
  journal= {arXiv preprint arXiv:2605.03910},
  year   = {2026}
}
R2 v1 2026-07-01T12:51:06.434Z