论文标题
III二硝酸盐纳米素化学,用于超越孤子的产生和自我引用
III-Nitride nanophotonics for beyond-octave soliton generation and self-referencing
论文作者
论文摘要
频率微型Comb,模式锁定激光和纤维梳子的继任者,使光的微型统治者能够用于应用,包括精度计量学,分子指纹和系外行星的发现。为了启用频率统治功能,必须通过锁定其载体 - 开发偏移频率来稳定微膜。到目前为止,微重稳定稳定在芯片外部的精美光学元件中保持了复杂,从而避免了其缩放效益。为了应对这一挑战,我们在这里演示了基于氮化铝薄膜的纳米光子芯片溶液,该薄膜同时提供了光学Kerr非线性,用于产生八度的Soliton Combs和Pockels非线性,以实现偏移频率的异差检测。晶体III氮化物光子学的敏捷性分散控制允许具有1.5八杆梳子跨度,双重色散波和亚terahertz重复率在内的特征的高保真生成孤子。这些有吸引力的特征,通过芯片上相匹配的氮化铝波导的帮助,可以全面确定偏移频率。我们的原理证明是用于便携式光原子时钟和频率合成器的完全集成自锁的微瘤的重要里程碑。
Frequency microcombs, successors to mode-locked laser and fiber combs, enable miniature rulers of light for applications including precision metrology, molecular fingerprinting, and exoplanet discoveries. To enable the frequency ruling function, microcombs must be stabilized by locking their carrier-envelop offset frequency. So far, the microcomb stabilization remains compounded by the elaborate optics external to the chip, thus evading its scaling benefit. To address this challenge, here we demonstrate a nanophotonic chip solution based on aluminum nitride thin films, which simultaneously offer optical Kerr nonlinearity for generating octave soliton combs and Pockels nonlinearity for enabling heterodyne detection of the offset frequency. The agile dispersion control of crystalline III-Nitride photonics permits high-fidelity generation of solitons with features including 1.5-octave comb span, dual dispersive waves, and sub-terahertz repetition rates down to 220 gigahertz. These attractive characteristics, aided by on-chip phase-matched aluminum nitride waveguides, allow the full determination of the offset frequency. Our proof-of-principle demonstration represents an important milestone towards fully-integrated self-locked microcombs for portable optical atomic clocks and frequency synthesizers.