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从590纳米到1150纳米的高效基于芯片的光学参量振荡器。

Efficient chip-based optical parametric oscillators from 590 nm to 1150 nm.

作者信息

Stone Jordan R, Lu Xiyuan, Moille Gregory, Srinivasan Kartik

机构信息

Joint Quantum Institute, NIST/University of Maryland, College Park, MD 20742 USA.

National Institute for Standards and Technology, Gaithersburg, MD 20899 USA.

出版信息

Optica. 2022;7(12). doi: 10.1063/5.0117691.

Abstract

Optical parametric oscillators are widely used to generate coherent light at frequencies not accessible by conventional laser gain. However, chip-based parametric oscillators operating in the visible spectrum have suffered from pump-to-signal conversion efficiencies typically less than 0.1 %. Here, we demonstrate efficient optical parametric oscillators based on silicon nitride photonics that address frequencies between 260 THz (1150 nm) and 510 THz (590 nm). Pumping silicon nitride microrings near 385 THz (780 nm) yields monochromatic signal and idler waves with unprecedented output powers in this wavelength range. We estimate on-chip output powers (separately for the signal and idler) between 1 mW and 5 mW and conversion efficiencies reaching ≈15 %. Underlying this improved performance is our development of pulley waveguides for broadband near-critical coupling, which exploits a fundamental connection between the waveguide-resonator coupling rate and conversion efficiency. Finally, we find that mode competition reduces conversion efficiency at high pump powers, thereby constraining the maximum realizable output power. Our work proves that optical parametric oscillators built with integrated photonics can produce useful amounts of visible laser light with high efficiency.

摘要

光学参量振荡器被广泛用于产生传统激光增益无法获得的频率的相干光。然而,工作在可见光谱范围内的基于芯片的参量振荡器的泵浦到信号的转换效率通常低于0.1%。在此,我们展示了基于氮化硅光子学的高效光学参量振荡器,其可覆盖260太赫兹(1150纳米)至510太赫兹(590纳米)的频率范围。在385太赫兹(780纳米)附近泵浦氮化硅微环,可产生在该波长范围内具有前所未有的输出功率的单色信号波和闲频波。我们估计片上输出功率(信号波和闲频波分别计算)在1毫瓦至5毫瓦之间,转换效率达到约15%。这种性能提升的基础是我们开发的用于宽带近临界耦合的滑轮波导,它利用了波导 - 谐振器耦合率与转换效率之间的基本联系。最后,我们发现模式竞争在高泵浦功率下会降低转换效率,从而限制了可实现的最大输出功率。我们的工作证明,基于集成光子学构建的光学参量振荡器能够高效产生大量有用的可见激光。

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