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Ultrafast optical control using the Kerr nonlinearity in hydrogenated amorphous silicon microcylindrical resonators

机译:在氢化非晶硅微圆柱谐振器中使用Kerr非线性进行超快光学控制

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Microresonators are ideal systems for probing nonlinear phenomena at low thresholds due to their small mode volumes and high quality ( Q ) factors. As such, they have found use both for fundamental studies of light-matter interactions as well as for applications in areas ranging from telecommunications to medicine. In particular, semiconductor-based resonators with large Kerr nonlinearities have great potential for high speed, low power all-optical processing. Here we present experiments to characterize the size of the Kerr induced resonance wavelength shifting in a hydrogenated amorphous silicon resonator and demonstrate its potential for ultrafast all-optical modulation and switching. Large wavelength shifts are observed for low pump powers due to the high nonlinearity of the amorphous silicon material and the strong mode confinement in the microcylindrical resonator. The threshold energy for switching is less than a picojoule, representing a significant step towards advantageous low power silicon-based photonic technologies.
机译:微谐振器由于其小模式体积和高质量(Q)因素,是在低阈值下探测非线性现象的理想系统。因此,他们不仅可以用于光物质相互作用的基础研究,还可以用于从电信到医学的领域。特别是,具有大Kerr​​非线性的基于半导体的谐振器具有进行高速,低功耗全光处理的巨大潜力。在这里,我们提出了表征在氢化非晶硅谐振腔中Kerr引起的谐振波长偏移的大小的实验,并证明了其超快全光调制和转换的潜力。对于低泵浦功率,由于非晶硅材料的高度非线性和微圆柱谐振器中的强模式限制,观察到较大的波长漂移。用于切换的阈值能量小于皮焦耳,这代表了朝着有利的低功耗硅基光子技术迈出的重要一步。

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