布里渊散射
光子学
光学
光子晶体
光电子学
非线性光学
布里渊区
拉曼散射
散射
慢光
材料科学
物理
光纤
激光器
拉曼光谱
作者
Moritz Merklein,Irina V. Kabakova,Thomas Büttner,Duk‐Yong Choi,Barry Luther‐Davies,Steve Madden,Benjamin J. Eggleton
摘要
Abstract On-chip nonlinear optics is a thriving research field, which creates transformative opportunities for manipulating classical or quantum signals in small-footprint integrated devices. Since the length scales are short, nonlinear interactions need to be enhanced by exploiting materials with large nonlinearity in combination with high-Q resonators or slow-light structures. This, however, often results in simultaneous enhancement of competing nonlinear processes, which limit the efficiency and can cause signal distortion. Here, we exploit the frequency dependence of the optical density-of-states near the edge of a photonic bandgap to selectively enhance or inhibit nonlinear interactions on a chip. We demonstrate this concept for one of the strongest nonlinear effects, stimulated Brillouin scattering using a narrow-band one-dimensional photonic bandgap structure: a Bragg grating. The stimulated Brillouin scattering enhancement enables the generation of a 15-line Brillouin frequency comb. In the inhibition case, we achieve stimulated Brillouin scattering free operation at a power level twice the threshold.
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