Hu Xin-Xin, Wang Jia-Qi, Yang Yuan-Hao, Surya Joshua B, Zhang Yan-Lei, Xu Xin-Biao, Li Ming, Dong Chun-Hua, Guo Guang-Can, Tang Hong X, Zou Chang-Ling
Opt Express. 2020 Apr 13;28(8):11144-11155. doi: 10.1364/OE.389514.
Nonlinear optical effects in integrated microcavities have been studied extensively with the advantages of strong light-matter interaction, great scalability, and stability due to the small mode volume. However, the pump lasers stimulating nonlinear effects impose obstacles for practical applications, since the material absorption causes thermal resonance drift and instability. Here we experimentally demonstrate an all-optical control of the thermal behavior in optical microcavities for tunable doubly-resonant second-harmonic (SH) generation on an integrated photonic chip. Through an auxiliary control laser, the temperature of a selected microring can be efficiently changed, thus allowing precise frequency tuning of the doubly-resonant wavelength while eliminating the distortion of the lineshape induced by the thermo-optic effect. Although the phase-matching conditions will limit the tuning range of 55GHz, the technique is still potential to achieve a larger tuning range in combination with temperature regulation. Additionally, this approach has the advantage of quick reconfiguration, showing a fast modulation rate up to about 256 kHz. The theoretical model behind our experimental scheme is universal and applicable to other microcavity-enhanced nonlinear optical processes, and our work paves the way for controlling and utilizing the thermal effect in the applications of microcavities.
集成微腔中的非线性光学效应因其强光-物质相互作用、高度可扩展性以及由于小模式体积带来的稳定性等优点而得到了广泛研究。然而,激发非线性效应的泵浦激光器给实际应用带来了障碍,因为材料吸收会导致热共振漂移和不稳定性。在此,我们通过实验展示了在集成光子芯片上对光学微腔热行为的全光控制,以实现可调谐双共振二次谐波(SH)产生。通过辅助控制激光,可以有效地改变选定微环的温度,从而在消除热光效应引起的线形失真的同时,实现双共振波长的精确频率调谐。尽管相位匹配条件会限制55GHz的调谐范围,但结合温度调节,该技术仍有潜力实现更大的调谐范围。此外,这种方法具有快速重新配置的优点,显示出高达约256kHz的快速调制速率。我们实验方案背后的理论模型具有通用性,适用于其他微腔增强的非线性光学过程,我们的工作为在微腔应用中控制和利用热效应铺平了道路。