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Optically Induced Indirect Photonic Transitions in a Slow Light Photonic Crystal Waveguide

机译:慢光光子晶体波导中的光诱导间接光子跃迁

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We demonstrate indirect photonic transitions in a silicon slow light photonic crystal waveguide. The transitions are driven by an optically generated refractive index front that moves along the waveguide and interacts with a signal pulse copropagating in the structure. We experimentally confirm a theoretical model which indicates that the ratio of the frequency and wave vector shifts associated with the indirect photonic transition is identical to the propagation velocity of the refractive index front. The physical origin of the transitions achieved here is fundamentally different than in previously proposed refractive index modulation concepts with fixed temporal and spatial modulation frequencies; as here, the interaction with the refractive index front results in a Doppler-like signal frequency and wave vector shift. Consequently, the bandwidth over which perfect mode frequency and wave vector matching is achieved is not intrinsically limited by the shape of the photonic bands, and tuning of the indirect photonic transitions is possible without any need for geometrical modifications of the structure. Our device is genuinely nonreciprocal, as it provides different frequency shifts for co- and counterpropagating signal and index fronts.
机译:我们展示了硅慢光光子晶体波导中的间接光子跃迁。跃迁由沿波导移动并与在结构中共同传播的信号脉冲相互作用的光学产生的折射率前沿驱动。我们通过实验证实了一个理论模型,该模型表明与间接光子跃迁相关的频率和波矢位移之比与折射率前沿的传播速度相同。这里实现的跃迁的物理起源与先前提出的具有固定的时间和空间调制频率的折射率调制概念根本不同;如此处所示,与折射率前缘的相互作用导致了类似多普勒的信号频率和波矢量偏移。因此,实现完美模式频率和波矢量匹配的带宽本质上不受光子带形状的限制,并且间接光子跃迁的调谐是可能的,而无需对结构进行几何修改。我们的设备是真正不可逆的,因为它为共同传播和反向传播的信号和索引前沿提供了不同的频移。

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