论文标题
硅芯片上的高性能微孔子光学参数振荡器
High-performance microresonator optical parametric oscillator on a silicon chip
论文作者
论文摘要
光学参数振荡(OPO)以其波长访问(即能够在与泵激光器急剧不同的波长下生成相干光的能力,原则上仅由输入泵场和输出信号/iDler磁场之间的能量保护。随着社会在量子信息科学,计量学和传感方面采用先进的工具,微芯片OPO可能为访问相关波长提供了重要的途径。但是,相干光的实用来源还应具有较高的转化效率和高输出功率。在这里,我们演示了具有前所未有的性能的硅光子OPO设备。我们的OPO设备基于氮化硅微孔子中的三阶($χ^{(3)$)非线性,可产生输出信号和惰轮的频率($> $> $ 150 THz),并显示出泵送速度转换效率的29 $ \%$ \ $ $ $ $ $ $ $ $> $ $> $> $> $> $>通过抑制竞争过程和强烈耦合输出光,可以实现这种性能。该方法可以很容易地应用于具有异质综合的泵激光器的现有硅光子平台,从而在具有高输出功率和效率的大量波长中柔性相干发电。
Optical parametric oscillation (OPO) is distinguished by its wavelength access, that is, the ability to flexibly generate coherent light at wavelengths that are dramatically different from the pump laser, and in principle bounded solely by energy conservation between the input pump field and the output signal/idler fields. As society adopts advanced tools in quantum information science, metrology, and sensing, microchip OPO may provide an important path for accessing relevant wavelengths. However, a practical source of coherent light should additionally have high conversion efficiency and high output power. Here, we demonstrate a silicon photonics OPO device with unprecedented performance. Our OPO device, based on the third-order ($χ^{(3)}$) nonlinearity in a silicon nitride microresonator, produces output signal and idler fields widely separated from each other in frequency ($>$150 THz), and exhibits a pump-to-idler conversion efficiency up to 29 $\%$ with a corresponding output idler power of $>$18 mW on-chip. This performance is achieved by suppressing competitive processes and by strongly overcoupling the output light. This methodology can be readily applied to existing silicon photonics platforms with heterogeneously-integrated pump lasers, enabling flexible coherent light generation across a broad range of wavelengths with high output power and efficiency.