English

Net on-chip Brillouin gain based on suspended silicon nanowires

Optics 2016-01-29 v1 Mesoscale and Nanoscale Physics

Abstract

The century-old study of photon-phonon coupling has seen a remarkable revival in the past decade. Driven by early observations of dynamical back-action, the field progressed to ground-state cooling and the counting of individual phonons. A recent branch investigates the potential of traveling-wave, optically broadband photon-phonon interaction in silicon circuits. Here, we report continuous-wave Brillouin gain exceeding the optical losses in a series of suspended silicon beams, a step towards selective on-chip amplifiers. We obtain efficiencies up to 104W1m110^{4} \, \text{W}^{-1}\text{m}^{-1}, the highest to date in the phononic gigahertz range. We also find indications that geometric disorder poses a significant challenge towards nanoscale phonon-based technologies.

Keywords

Cite

@article{arxiv.1508.06318,
  title  = {Net on-chip Brillouin gain based on suspended silicon nanowires},
  author = {Raphaël Van Laer and Alexandre Bazin and Bart Kuyken and Roel Baets and Dries Van Thourhout},
  journal= {arXiv preprint arXiv:1508.06318},
  year   = {2016}
}

Comments

14 pages, 8 figures