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Tailorable stimulated Brillouin scattering in nanoscale silicon waveguides. | LitMetric

AI Article Synopsis

  • Nanoscale modal confinement in silicon waveguides significantly boosts Kerr and Raman nonlinear effects, but traditional methods limit stimulated Brillouin scattering (SBS), restricting its application in signal processing.
  • The research introduces a new type of hybrid photonic-phononic waveguides that successfully enables SBS in silicon, demonstrating over 1,000 times greater nonlinearity than previous systems.
  • This advancement not only enhances Brillouin nonlinearity through radiation pressures but also opens doors for integrating silicon photonics with microelectromechanical systems and CMOS technologies on a single chip.

Article Abstract

Nanoscale modal confinement is known to radically enhance the effect of intrinsic Kerr and Raman nonlinearities within nanophotonic silicon waveguides. By contrast, stimulated Brillouin-scattering nonlinearities, which involve coherent coupling between guided photon and phonon modes, are stifled in conventional nanophotonics, preventing the realization of a host of Brillouin-based signal-processing technologies in silicon. Here we demonstrate stimulated Brillouin scattering in silicon waveguides, for the first time, through a new class of hybrid photonic-phononic waveguides. Tailorable travelling-wave forward-stimulated Brillouin scattering is realized-with over 1,000 times larger nonlinearity than reported in previous systems-yielding strong Brillouin coupling to phonons from 1 to 18 GHz. Experiments show that radiation pressures, produced by subwavelength modal confinement, yield enhancement of Brillouin nonlinearity beyond those of material nonlinearity alone. In addition, such enhanced and wideband coherent phonon emission paves the way towards the hybridization of silicon photonics, microelectromechanical systems and CMOS signal-processing technologies on chip.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3709496PMC
http://dx.doi.org/10.1038/ncomms2943DOI Listing

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