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Ultrahigh-Q Torsional Nanomechanics through Bayesian Optimization

Mesoscale and Nanoscale Physics 2025-06-04 v1 Applied Physics

Abstract

Recently it was discovered that torsion modes of strained nanoribbons exhibit dissipation dilution, giving a route to enhanced torque sensing and quantum optomechanics experiments. As with all strained nanomechanical resonators, an important limitation is bending loss due to mode curvature at the clamps. Here we use Bayesian optimization to design nanoribbons with optimal dissipation dilution of the fundamental torsion mode. Applied to centimeter-scale Si3_3N4_4 nanoribbons, we realize QQ factors exceeding 100 million and QQ-frequency products exceeding 101310^{13} Hz at room temperature. The thermal torque sensitivity of the reported devices is at the level of 1020  Nm/Hz10^{-20}\;\text{N}\,\text{m}/\sqrt{\text{Hz}} and the zero point angular displacement spectral density is at the level of 1010  rad/Hz10^{-10}\;\text{rad}/\sqrt{\text{Hz}}; they are moreover simple to fabricate, have high thermal conductivity, and can be heavily mass-loaded without diminishing their QQ, making them attractive for diverse fundamental and applied weak force sensing tasks.

Keywords

Cite

@article{arxiv.2506.02325,
  title  = {Ultrahigh-Q Torsional Nanomechanics through Bayesian Optimization},
  author = {Atkin D. Hyatt and Aman R. Agrawal and Christian M. Pluchar and Charles A. Condos and Dalziel J. Wilson},
  journal= {arXiv preprint arXiv:2506.02325},
  year   = {2025}
}

Comments

6 pages, 4 figures

R2 v1 2026-07-01T02:55:36.950Z