Stanton Eric J, Chiles Jeff, Nader Nima, Moody Galan, Volet Nicolas, Chang Lin, Bowers John E, Woo Nam Sae, Mirin Richard P
Opt Express. 2020 Mar 30;28(7):9521-9532. doi: 10.1364/OE.389423.
Nonlinear frequency conversion plays a crucial role in advancing the functionality of next-generation optical systems. Portable metrology references and quantum networks will demand highly efficient second-order nonlinear devices, and the intense nonlinear interactions of nanophotonic waveguides can be leveraged to meet these requirements. Here we demonstrate second harmonic generation (SHG) in GaAs-on-insulator waveguides with unprecedented efficiency of 40 W for a single-pass device. This result is achieved by minimizing the propagation loss and optimizing phase-matching. We investigate surface-state absorption and design the waveguide geometry for modal phase-matching with tolerance to fabrication variation. A 2.0 µm pump is converted to a 1.0 µm signal in a length of 2.9 mm with a wide signal bandwidth of 148 GHz. Tunable and efficient operation is demonstrated over a temperature range of 45 °C with a slope of 0.24 nm/°C. Wafer-bonding between GaAs and SiO is optimized to minimize waveguide loss, and the devices are fabricated on 76 mm wafers with high uniformity. We expect this device to enable fully integrated self-referenced frequency combs and high-rate entangled photon pair generation.
非线性频率转换在提升下一代光学系统功能方面发挥着关键作用。便携式计量参考和量子网络将需要高效的二阶非线性器件,而纳米光子波导的强非线性相互作用可被利用来满足这些需求。在此,我们展示了绝缘体上砷化镓波导中的二次谐波产生(SHG),对于单通器件,其效率达到了前所未有的40W。这一结果是通过最小化传播损耗和优化相位匹配实现的。我们研究了表面态吸收,并设计了波导几何结构以实现对制造变化具有容差的模式相位匹配。在2.9mm的长度内,2.0μm的泵浦光被转换为1.0μm的信号,信号带宽达148GHz。在45°C的温度范围内实现了可调谐且高效的运行,斜率为0.24nm/°C。优化了砷化镓和二氧化硅之间的晶圆键合以最小化波导损耗,并且这些器件在76mm的晶圆上以高均匀性制造。我们期望该器件能够实现完全集成的自参考频率梳和高速纠缠光子对的产生。