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Mapping Ultrafast Timing Jitter in Dispersion-Managed 89 GHz Frequency Microcombs Via Self-Heterodyne Linear Interferometry

arXiv (Cornell University)(2021)

Cited 1|Views24
Abstract
Laser frequency microcombs provide equidistant coherent frequency markers over a broad spectrum, enabling new frontiers in chip-scale frequency metrology, laser spectroscopy, dense optical communications, precision distance metrology and astronomy. Here we demonstrate thermally stabilized frequency microcomb formation in dispersion-managed microresonators at the different mode-locking states featured with the negligible center frequency shift and broad frequency bandwidth. Subsequently, femtosecond timing jitter in the microcombs are characterized, supported by precision metrology on the timing phase, relative intensity noise and instantaneous linewidth. We contrast the fundamental noise for a range of 89 GHz microcomb states, from soliton crystals to multiple solitons and single-soliton regimes, determined by pump-resonance detuning. For the single-soliton state, we report a close-to-shot-noise-limited relative intensity noise of -153.2 dB/Hz and a quantum-noise-limited timing jitter power spectral density of 0.4 as2/Hz, at 100 kHz offset frequency. This is enabled by a self-heterodyne linear interferometer with 94.2 zs/Hz1/2 timing resolution, 50.6 mHz/Hz1/2 RF frequency resolution, and 6.7 uV/Hz frequency discrimination sensitivity. We achieve an integrated timing jitter at 1.7 fs, integrated from 10 kHz to 1 MHz. Measuring and understanding the fundamental noise parameters in these high-clock-rate frequency microcombs are essential to advance soliton physics and precision microwave-optical clockwork.
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Fiber Lasers,Optical Frequency Combs,Microresonators,Microcavities,Ultrafast Lasers
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要点】:本文通过自差频线性干涉法在色散管理的微谐振器中映射了89 GHz频率微梳的飞秒级时间抖动,实现了接近散粒噪声极限的相对强度噪声和量子噪声极限的时间抖动功率谱密度。

方法】:作者采用热稳定化的方法在色散管理的微谐振器中形成频率微梳,并通过自差频线性干涉法对微梳的时间抖动进行精确测量。

实验】:实验在89 GHz频率微梳的不同锁模状态下进行,使用自差频线性干涉仪实现了94.2 zs/Hz1/2的时间分辨率和50.6 mHz/Hz1/2的射频频率分辨率,以及6.7 uV/Hz的频率判别灵敏度,最终在10 kHz至1 MHz范围内集成了1.7 fs的时间抖动。数据集名称未提及。