Gentry Cale M, Zeng Xiaoge, Popović Miloš A
Opt Lett. 2014 Oct 1;39(19):5689-92. doi: 10.1364/OL.39.005689.
We propose and demonstrate mode coupling as a viable dispersion compensation technique for phase-matched resonant four-wave mixing (FWM). We demonstrate a dual-cavity resonant structure that employs coupling-induced frequency splitting at one of three resonances to compensate for cavity dispersion, enabling phase matching. Coupling strength is controlled by thermal tuning of one cavity enabling active tuning of the resonant frequency matching. In a fabricated silicon microresonator, we show an 8 dB enhancement of seeded FWM efficiency over the noncompensated state. The measured FWM has a peak wavelength conversion efficiency of -37.9 dB across a free spectral range (FSR) of 3.334 THz (∼27 nm), which is, to the best of our knowledge, the largest in a silicon microresonator to demonstrate FWM to date. This form of dispersion compensation can be beneficial for many devices, including wavelength converters, parametric amplifiers, and widely detuned photon-pair sources. Apart from compensating dispersion, the proposed mechanism can alternatively be utilized in an otherwise dispersionless resonator to counteract the detuning effect of self- and cross-phase modulation on the pump resonance during FWM, thereby addressing a fundamental issue in the performance of light sources such as broadband optical frequency combs.
我们提出并证明了模式耦合作为一种用于相位匹配共振四波混频(FWM)的可行色散补偿技术。我们展示了一种双腔共振结构,该结构在三个共振之一处利用耦合诱导的频率分裂来补偿腔色散,从而实现相位匹配。耦合强度通过对一个腔进行热调谐来控制,从而实现共振频率匹配的主动调谐。在一个制造的硅微谐振器中,我们展示了与未补偿状态相比,种子四波混频效率提高了8 dB。所测量的四波混频在3.334 THz(约27 nm)的自由光谱范围(FSR)内具有-37.9 dB的峰值波长转换效率,据我们所知,这是迄今为止硅微谐振器中展示四波混频的最大效率。这种色散补偿形式对许多器件都有益,包括波长转换器、参量放大器和宽失谐光子对源。除了补偿色散外,所提出的机制还可以在其他无色散谐振器中用于抵消四波混频期间自相位调制和交叉相位调制对泵浦共振的失谐效应,从而解决诸如宽带光学频率梳等光源性能中的一个基本问题。