English

Interaction between light and highly confined hypersound in a silicon photonic nanowire

Optics 2015-03-03 v1 Mesoscale and Nanoscale Physics

Abstract

In the past decade, there has been a surge in research at the boundary between photonics and phononics. Most efforts centered on coupling light to motion in a high-quality optical cavity, typically geared towards observing the quantum state of a mechanical oscillator. It was recently predicted that the strength of the light-sound interaction would increase drastically in nanoscale silicon photonic wires. Here we demonstrate, for the first time, such a giant overlap between near-infrared light and gigahertz sound co-localized in a small-core silicon wire. The wire is supported by a tiny pillar to block the path for external phonon leakage, trapping 10  GHz\mathbf{10} \; \textbf{GHz} phonons in an area below 0.1  μm2\mathbf{0.1 \; \boldsymbol\mu}\textbf{m}^{\mathbf{2}}. Since our geometry can be coiled up to form a ring cavity, it paves the way for complete fusion between the worlds of cavity optomechanics and Brillouin scattering. The result bodes well for the realization of low-footprint optically-pumped lasers/sasers and delay lines on a densely integrated silicon chip.

Keywords

Cite

@article{arxiv.1407.4977,
  title  = {Interaction between light and highly confined hypersound in a silicon photonic nanowire},
  author = {Raphaël Van Laer and Bart Kuyken and Dries Van Thourhout and Roel Baets},
  journal= {arXiv preprint arXiv:1407.4977},
  year   = {2015}
}