English

Elastic measurements of amorphous silicon films at mK temperatures

Mesoscale and Nanoscale Physics 2016-11-23 v1

Abstract

The low temperature properties of glass are distinct from those of crystals due to the presence of poorly understood low-energy excitations. The tunneling model proposes that these are atoms tunneling between nearby equilibria, forming tunneling two level systems (TLSs). This model is rather successful, but it does not explain the remarkably universal value of the mechanical dissipation Q1Q^{-1} near 1 kelvin. The only known exceptions to this universality are the Q1Q^{-1} of certain thin films of amorphous silicon, carbon and germanium. Recently, it was found that Q1Q^{-1} of amorphous silicon (a-Si) films can be reduced by two orders of magnitude by increasing the temperature of the substrate during deposition. According to the tunneling model, the reduction in Q1Q^{-1} at 1 kelvin implies a reduction in P0γ2P_{0}\gamma ^{2}, where P0P_{0} is the density of TLSs and γ\gamma is their coupling to phonons. In this preliminary report, we demonstrate elastic measurements of a-Si films down to 20 mK. This will allow us, in future work, to determine whether P0P_{0} or γ\gamma is responsible for the reduction in Q1Q^{-1} with deposition temperature.

Keywords

Cite

@article{arxiv.1610.06778,
  title  = {Elastic measurements of amorphous silicon films at mK temperatures},
  author = {Andrew Fefferman and Ana Maldonado and Eddy Collin and Xiao Liu and Tom Metcalf and Glenn Jernigan},
  journal= {arXiv preprint arXiv:1610.06778},
  year   = {2016}
}

Comments

accepted by Journal of Low Temperature Physics