Opt Lett. 2018 Sep 1;43(17):4220-4223. doi: 10.1364/OL.43.004220.
We demonstrate wide-band frequency down-conversion to the mid-infrared (MIR) using four-wave mixing (FWM) of near-infrared (NIR) femtosecond-duration pulses from an Er:fiber laser, corresponding to 100 THz spectral translation. Photonic-chip-based silicon nitride waveguides provide the FWM medium. Engineered dispersion in the nanophotonic geometry and the wide transparency range of silicon nitride enable large-detuning FWM phase-matching and results in tunable MIR from 2.6 to 3.6 μm on a single chip with 100-pJ-scale pump-pulse energies. Additionally, we observe up to 25 dB broadband parametric gain for NIR pulses when the FWM process is operated in a frequency up-conversion configuration. Our results demonstrate how integrated photonic circuits pumped with fiber lasers could realize multiple nonlinear optical phenomena on the same chip and lead to engineered synthesis of broadband, tunable, and coherent light across the NIR and MIR wavelength bands.
我们展示了使用来自 Er:光纤激光器的近红外 (NIR) 飞秒脉冲的四波混频 (FWM) 将宽带频率下转换到中红外 (MIR),对应于 100 THz 的光谱平移。基于光子芯片的氮化硅波导提供了 FWM 介质。纳米光子学几何中的工程色散和氮化硅的宽透明范围使大失谐 FWM 相位匹配成为可能,并在单个芯片上实现了可调谐 MIR,泵浦脉冲能量为 100 pJ 量级,可调谐范围从 2.6 到 3.6 μm。此外,当 FWM 过程以频率上转换配置运行时,我们观察到 NIR 脉冲的宽带参量增益高达 25 dB。我们的结果表明,用光纤激光器泵浦的集成光子电路如何在同一芯片上实现多种非线性光学现象,并导致在近红外和中红外波长带中宽带、可调谐和相干光的工程合成。