English

Moving boundary and photoelastic coupling in GaAs optomechanical resonators

Optics 2014-12-19 v1 Mesoscale and Nanoscale Physics

Abstract

Chip-based cavity optomechanical systems are being considered for applications in sensing, metrology, and quantum information science. Critical to their development is an understanding of how the optical and mechanical modes interact, quantified by the coupling rate g0g_{0}. Here, we develop GaAs optomechanical resonators and investigate the moving dielectric boundary and photoelastic contributions to g0g_{0}. First, we consider coupling between the fundamental radial breathing mechanical mode and a 1550 nm band optical whispering gallery mode in microdisks. For decreasing disk radius from R=5R=5 μ\mum to R=1R=1 μ\mum, simulations and measurements show that g0g_{0} changes from being dominated by the moving boundary contribution to having an equal photoelastic contribution. Next, we design and demonstrate nanobeam optomechanical crystals in which a 2.52.5 GHz mechanical breathing mode couples to a 1550 nm optical mode predominantly through the photoelastic effect. We show a significant (30 %\%) dependence of g0g_{0} on the device's in-plane orientation, resulting from the difference in GaAs photoelastic coefficients along different crystalline axes, with fabricated devices exhibiting g0/2πg_{\text{0}}/2\pi as high as 1.1 MHz for orientation along the [110] axis. GaAs nanobeam optomechanical crystals are a promising system which can combine the demonstrated large optomechanical coupling strength with additional functionality, such as piezoelectric actuation and incorporation of optical gain media.

Keywords

Cite

@article{arxiv.1409.6198,
  title  = {Moving boundary and photoelastic coupling in GaAs optomechanical resonators},
  author = {Krishna C. Balram and M. Davanco and Ju Young Lim and Jin Dong Song and K. Srinivasan},
  journal= {arXiv preprint arXiv:1409.6198},
  year   = {2014}
}