论文标题
在超低泵功率下芯片上的大型再生参数放大
Large regenerative parametric amplification on chip at ultra-low pump powers
论文作者
论文摘要
基于芯片的光放大器可以显着扩大光子设备的功能。特别是,具有可用增益光谱的光学参数放大器(OPA)非常适合非线性光子应用。基于芯片的OPA通常需要占据较大占地面积的长波导和高泵功率,而高泵功率不能轻易用芯片尺度激光器产生。我们从理论上和实验上证明了微孔辅助辅助的再生OPA,该再生性OPA受益于大型非线性增强微孔子,并在较小的足迹中产生了很高的增长。我们仅使用9 MW的CW-PUMP功率实现30 dB的参数增益,并表明可以设计增益频谱以覆盖与基于ER的放大器无法访问的电信通道。我们进一步证明了Kerr-Soliton梳子线的扩增及其相性能的保存。此外,我们通过对光学参数振荡器的注射锁定进行放大,该振荡器对应于振荡阈值上方的再生放大器。新颖的分散工程技术,例如耦合的腔体和高阶分散相匹配可以进一步扩展我们的扩增方案的可调性和光谱覆盖范围。我们再生OPA的高增益,小足迹,低泵功率和灵活的增益 - 光谱工程非常适合将信号从纳米瓦室扩增到Microwatt机制,以用于便携式或基于太空的设备,在该设备中,需要超高电力水平,并且可以在chon-Chip-chchip-optical-chchip-optical-chipical-chipical-chipical-chipical-chine-chine-chip and-Chip-Free-Free-Free-Free-free-ferequence-Free-Free-Free-Free-fimeSisessission和Precsecise Periesissing and TimeSection中进行重要应用。
Chip-based optical amplifiers can significantly expand the functionalities of photonic devices. In particular, optical-parametric amplifiers (OPAs), with engineerable gain-spectra, are well-suited for nonlinear-photonic applications. Chip-based OPAs typically require long waveguides that occupy a large footprint, and high pump powers that cannot be easily produced with chip-scale lasers. We theoretically and experimentally demonstrate a microresonator-assisted regenerative OPA that benefits from the large nonlinearity enhancement of microresonators and yields a high gain in a small footprint. We achieve 30-dB parametric gain with only 9 mW of cw-pump power and show that the gain spectrum can be engineered to cover telecom channels inaccessible with Er-based amplifiers. We further demonstrate the amplification of Kerr-soliton comb lines and the preservation of their phase properties. Additionally, we demonstrate amplification by injection locking of optical-parametric oscillators, which corresponds to a regenerative amplifier pumped above the oscillation threshold. Novel dispersion engineering techniques such as coupled cavities and higher-order-dispersion phase matching can further extend the tunability and spectral coverage of our amplification schemes. The combination of high gain, small footprint, low pump power, and flexible gain-spectra engineering of our regenerative OPA is ideal for amplifying signals from the nanowatt to microwatt regimes for portable or space-based devices where ultralow electrical power levels are required and can lead to important applications in on-chip optical- and microwave-frequency synthesis and precise timekeeping.