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Non-reciprocal interband Brillouin modulation

机译:非互惠间布里渊调制

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Non-reciprocal light propagation is essential to control optical crosstalk and back-scatter in photonic systems. However, realizing high-fidelity non-reciprocity in low-loss integrated photonic circuits remains challenging. Here, we experimentally demonstrate a form of non-local acousto-optic light scattering to produce non-reciprocal single-sideband modulation and mode conversion in an integrated silicon photonic platform. In this system, a travelling-wave acoustic phonon driven by optical forces in a silicon waveguide spatiotemporally modulates light in a separate waveguide through linear interband Brillouin scattering. This process extends narrowband optomechanics-based schemes for non-reciprocity to travelling-wave physics, enabling large operation bandwidths of more than 125 GHz and up to 38 dB of non-reciprocal contrast between forward- and backward-propagating optical waves. The modulator operation wavelength is tunable over a 35-nm range by varying the optical drive wavelength. Such travelling-wave acousto-optic interactions provide a promising path toward the realization of broadband, low-loss isolators and circulators within integrated photonics.
机译:非互易光传播对于控制光子系统中的光学串扰和后散射至关重要。然而,实现低损耗集成光子电路中的高保真非互惠仍然具有挑战性。这里,我们通过实验展示了一种非局部声光散射的形式,以在集成的硅光子平台中产生非互易单边带调制和模式转换。在该系统中,通过线性间隙布里渊​​散射在硅波导中由光学力的光学力驱动的行进波声声波孔在单独的波导中调制光。该过程扩展了基于窄带光学力学的方案,用于非互动的行波物理学,使得在前后和后向 - 传播光波之间的大于125GHz的大于125GHz的大于125GHz的大于非互敏对比度。通过改变光学驱动波长,调制器操作波长在35纳米范围内可调谐。这种行进波声光相互作用提供了实现宽带,低损耗隔离器和集成光子内的循环器的有希望的路径。

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