English

Analysis of membrane phononic crystals with wide bandgaps and low-mass defects

Applied Physics 2019-10-23 v1 Mesoscale and Nanoscale Physics

Abstract

We present techniques to model and design membrane phononic crystals with low-mass defects, optimized for force sensing. Further, we identify the importance of the phononic crystal mass contrast as it pertains to the size of acoustic bandgaps and to the dissipation properties of defect modes. In particular, we quantify the tradeoff between high mass contrast phononic crystals with their associated robust acoustic isolation, and a reduction of soft clamping of the defect mode. We fabricate a set of phononic crystals with a variety of defect geometries out of high stress stoichiometric silicon nitride membranes, and measured at both room temperature and 4 K in order to characterize the dissipative pathways across a variety of geometries. Analysis of these devices highlights a number of design principles integral to the implementation of low-mass, low-dissipation mechanical modes into optomechanical systems.

Keywords

Cite

@article{arxiv.1906.11273,
  title  = {Analysis of membrane phononic crystals with wide bandgaps and low-mass defects},
  author = {Chris Reetz and Ran Fischer and Gabriel G. T. Assumpcao and Dylan P. McNally and Peter S. Burns and Jack C. Sankey and Cindy A. Regal},
  journal= {arXiv preprint arXiv:1906.11273},
  year   = {2019}
}

Comments

12 pages, 11 figures