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Ultralow loss torsion micropendula for chipscale gravimetry

Applied Physics 2025-08-28 v2 Mesoscale and Nanoscale Physics Geophysics

Abstract

We explore a new class of chipscale torsion pendula formed by Si3_3N4_4 nanoribbon suspensions. Owing to their unique hierarchy of gravitational, tensile, and elastic stiffness, the devices exhibit damping rates of 10  μ\sim 10\;\muHz and parametric gravity sensitivities near that of an ideal pendulum. The suspension nonlinearity can also be used to cancel the pendulum nonlinearity, paving the way towards fully isochronous, high QQ pendulum gravimeters. As a demonstration, we study a 0.1 mg, 32 Hz micropendulum with a damping rate of 16  μ16\;\muHz, a thermal acceleration sensitivity of 2  ng/Hz2\;\text{n}g/\sqrt{\text{Hz}}, and a parametric gravity sensitivity of 55 Hz/g0g_0. We record Allan deviations as low as 2.5 μ\muHz at 100 seconds, corresponding to a bias stability of 5×107g05\times 10^{-7}g_0. We also demonstrate a 100-fold cancellation of the pendulum nonlinearity. In addition to inertial sensing, our devices are well suited to proposed searches for new physics exploiting low-loss micro- to milligram-scale mechanical oscillators.

Keywords

Cite

@article{arxiv.2411.04113,
  title  = {Ultralow loss torsion micropendula for chipscale gravimetry},
  author = {C. A. Condos and J. R. Pratt and J. Manley and A. R. Agrawal and S. Schlamminger and C. M. Pluchar and D. J. Wilson},
  journal= {arXiv preprint arXiv:2411.04113},
  year   = {2025}
}

Comments

12 pages, 9 figures; Revised following peer review; includes new experimental data and discussion