English

Evidence for structural damping in a high-stress silicon nitride nanobeam and its implications for quantum optomechanics

Optics 2018-07-18 v2 Quantum Physics

Abstract

We resolve the thermal motion of a high-stress silicon nitride nanobeam at frequencies far below its fundamental flexural resonance (3.4 MHz) using cavity-enhanced optical interferometry. Over two decades, the displacement spectrum is well-modeled by that of a damped harmonic oscillator driven by a 1/f1/f thermal force, suggesting that the loss angle of the beam material is frequency-independent. The inferred loss angle at 3.4 MHz, ϕ=4.5106\phi = 4.5\cdot 10^{-6}, agrees well with the quality factor (QQ) of the fundamental beam mode (ϕ=Q1\phi = Q^{-1}). In conjunction with QQ measurements made on higher order flexural modes, and accounting for the mode dependence of stress-induced loss dilution, we find that the intrinsic (undiluted) loss angle of the beam changes by less than a factor of 2 between 50 kHz and 50 MHz. We discuss the impact of such "structural damping" on experiments in quantum optomechanics, in which the thermal force acting on a mechanical oscillator coupled to an optical cavity is overwhelmed by radiation pressure shot noise. As an illustration, we show that structural damping reduces the bandwidth of ponderomotive squeezing.

Keywords

Cite

@article{arxiv.1703.07134,
  title  = {Evidence for structural damping in a high-stress silicon nitride nanobeam and its implications for quantum optomechanics},
  author = {S. A. Fedorov and V. Sudhir and R. Schilling and H. Schütz and D. J. Wilson and T. J. Kippenberg},
  journal= {arXiv preprint arXiv:1703.07134},
  year   = {2018}
}

Comments

Submitted to the special issue of Physics Letters A in the memory of V. Braginsky