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Time-reversal symmetry breaking with acoustic pumping of nanophotonic circuits

2017/07/25 by Donggyu B. Sohn, Donggyu B Sohn, Seunghwi Kim +1 · 232 citations
Engineering · Materials Science · Physics and Astronomy · #Acoustic Wave Phenomena Research #Asymmetry #Bandwidth (computing) #Electronic circuit #Isolator #Mechanical and Optical Resonators #Metamaterials and Metasurfaces Applications #Nanophotonics #Optical isolator #Optical physics #Photonics #Symmetry breaking #physics.optics

paper · pdf · doi:10.1038/s41566-017-0075-2

published in Nature Photonics 12(2), 91-97 (Nature Portfolio)

openalex created_date 2017/07/21 · arxiv created 2017/07/25 · openalex publication_date 2018/01/19 · arxiv updated 2018/02/02 · openalex updated_date 2026/08/05

Abstract

Achieving non-reciprocal light propagation via stimuli that break time-reversal symmetry, without magneto-optics, remains a major challenge for integrated nanophotonic devices. Recently, optomechanical microsystems in which light and vibrational modes are coupled through ponderomotive forces, have demonstrated strong non-reciprocal effects through a variety of techniques, but always using optical pumping. None of these approaches have demonstrated bandwidth exceeding that of the mechanical system, and all of them require optical power, which are both fundamental and practical issues. Here we resolve both of these challenges through breaking of time-reversal symmetry using an acoustic pump in an integrated nanophotonic circuit. GHz-bandwidth optomechanical non-reciprocity is demonstrated using the action of a 2-dimensional surface acoustic wave pump, that simultaneously provides non-zero overlap integral for light-sound interaction and also satisfies the necessary phase-matching. We use this technique to produce a simple frequency shifting isolator (i.e. a non-reciprocal modulator) by means of indirect interband scattering. We demonstrate mode conversion asymmetry up to 15 dB, efficiency as high as 17%, over bandwidth exceeding 1 GHz.

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