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Enhanced wavelength conversion and photon pair generation using slow light effects and electronic carrier sweep out in silicon photonics devices

机译:在硅光子器件中利用慢速光效应和电子载流子扫掠增强了波长转换和光子对的产生

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Silicon photonics has drawn a lot of attention over the last decades, mainly in telecom-related application fields where the nonlinear optical properties of silicon are ignored or minimized. However, silicon's high χ~((3)) Kerr optical nonlinearity in sub-micron-scale high-confinement waveguides can enable significant improvements in traditional nonlinear devices, such as for wavelength conversion, and also enable some device applications in quantum optics or for quantum key distribution. In order to establish the viability of silicon photonics in practical applications, some big challenges are to improve the optical performance (e.g., optimize nonlinearity or minimize loss) and integration of optics with microelectronics. In this context, we discuss how electronic PIN diodes improve the performance of wavelength conversion in a microring resonator based four-wave mixing device, which achieves a continuous-wave four-wave mixing conversion efficiency of -21.3 dB at 100 mW pump power, with enough bandwidth for the wavelength conversion of a 10 Gbps signal. In the regime of quantum optics, we describe a coupled microring device that can serve as a tunable source of entangled photon pairs at telecommunications wavelengths, operating at room temperature with a low pump power requirement. By controlling either the optical pump wavelength, or the chip temperature, we show that the output bi-photon spectrum can be varied, with implications on the degree of frequency correlation of the generated quantum state.
机译:在过去的几十年中,硅光子学引起了很多关注,主要是在电信相关的应用领域中,硅的非线性光学特性被忽略或最小化。但是,亚微米级高约束波导中硅的高χ〜((3))Kerr光学非线性可以显着改善传统非线性器件,例如用于波长转换,还可以实现某些器件在量子光学或光学领域的应用。量子密钥分配。为了在实际应用中建立硅光子学的可行性,一些重大挑战是提高光学性能(例如,优化非线性或使损耗最小化)以及将光学器件与微电子器件集成。在此背景下,我们讨论了电子PIN二极管如何在基于微环谐振器的四波混频设备中提高波长转换的性能,该器件在100 mW泵浦功率下实现-21.3 dB的连续波四波混频转换效率,足够的带宽用于10 Gbps信号的波长转换。在量子光学领域,我们描述了一种耦合微环设备,该设备可在电信波长下用作纠缠光子对的可调源,在室温下以较低的泵浦功率要求工作。通过控制光泵浦波长或芯片温度,我们表明可以改变输出双光子光谱,并影响所生成量子态的频率相关程度。

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