Liu Haixin, Brodnik Grant M, Zang Jizhao, Carlson David R, Black Jennifer A, Papp Scott B
Time and Frequency Division, National Institute of Standards and Technology, Boulder, Colorado, USA.
Department of Physics, University of Colorado, Boulder, Colorado, USA.
Phys Rev Lett. 2024 Jan 12;132(2):023801. doi: 10.1103/PhysRevLett.132.023801.
We explore optical parametric oscillation (OPO) in nanophotonic resonators, enabling arbitrary, nonlinear phase matching and nearly lossless control of energy conversion. Such pristine OPO laser converters are determined by nonlinear light-matter interactions, making them both technologically flexible and broadly reconfigurable. We utilize a nanostructured inner-wall modulation in the resonator to achieve universal phase matching for OPO-laser conversion, but coherent backscattering also induces a counterpropagating pump laser. This depletes the intraresonator optical power in either direction, increasing the OPO threshold power and limiting laser-conversion efficiency, the ratio of optical power in target signal and idler frequencies to the pump. We develop an analytical model of this system that emphasizes an understanding of optimal laser-conversion and threshold behaviors, and we use the model to guide experiments with nanostructured-resonator OPO laser-conversion circuits, fully integrated on chip and unlimited by group-velocity dispersion. Our Letter demonstrates the fundamental connection between OPO laser-conversion efficiency and the resonator coupling rate, subject to the relative phase and power of counterpropagating pump fields. We achieve (40±4) mW of on-chip power, corresponding to (41±4)% conversion efficiency, and discover a path toward near-unity OPO laser-conversion efficiency.
我们探索了纳米光子谐振器中的光学参量振荡(OPO),实现了任意的、非线性的相位匹配以及对能量转换的近乎无损控制。这种纯净的OPO激光转换器由非线性光与物质相互作用决定,使其在技术上既灵活又具有广泛的可重构性。我们利用谐振器中的纳米结构内壁调制来实现OPO激光转换的通用相位匹配,但相干背向散射也会诱导出反向传播的泵浦激光。这会耗尽两个方向上的腔内光功率,提高OPO阈值功率并限制激光转换效率,即目标信号和闲频处的光功率与泵浦光功率的比值。我们开发了该系统的一个分析模型,该模型着重于对最佳激光转换和阈值行为的理解,并且我们使用该模型来指导纳米结构谐振器OPO激光转换电路的实验,这些电路完全集成在芯片上且不受群速度色散的限制。我们的论文展示了OPO激光转换效率与谐振器耦合率之间的基本联系,这取决于反向传播泵浦场的相对相位和功率。我们实现了片上功率为(40±4)mW,对应转换效率为(41±4)%,并发现了一条通往近乎单位OPO激光转换效率的途径。