Pockels laser directly driving ultrafast optical metrology

IF 20.6 Q1 OPTICS
Shixin Xue, Mingxiao Li, Raymond Lopez-rios, Jingwei Ling, Zhengdong Gao, Qili Hu, Tian Qiu, Jeremy Staffa, Lin Chang, Heming Wang, Chao Xiang, John E. Bowers, Qiang Lin
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Abstract

The invention of the laser unleashed the potential of optical metrology, leading to numerous advancements in modern science and technology. This reliance on lasers, however, also introduces a bottleneck for precision optical metrology, as it requires sophisticated photonic infrastructure for precise laser-wave control, leading to limited metrology performance and significant system complexity. Here, we take a key step toward overcoming this challenge by demonstrating a Pockels laser with multifunctional capabilities that elevate optical metrology to a new level. The chip-scale laser achieves a narrow intrinsic linewidth down to 167 Hz and a broad mode-hop-free tuning range up to 24 GHz. In particular, it delivers an unprecedented frequency chirping rate of up to 20 EHz/s and an exceptional modulation bandwidth exceeding 10 GHz, both of which are orders of magnitude greater than those of existing lasers. Leveraging this laser, we successfully achieve velocimetry at 40 m/s over a short distance of 0.4 m, and measurable velocities up to the first cosmic velocity at 1 m away—a feat unattainable with conventional ranging approaches. At the same time, we achieve distance metrology with a ranging resolution of <2 cm. Furthermore, for the first time to our knowledge, we implement a dramatically simplified architecture for laser frequency stabilization by directly locking the laser to an external reference gas cell without requiring additional external light control. This approach enables long-term laser stability with a frequency fluctuation of only ±6.5 MHz over 60 min. The demonstrated Pockels laser combines elegantly high laser coherence with ultrafast frequency reconfigurability and superior multifunctional capability. We envision its profound impact across diverse fields including communication, sensing, autonomous driving, quantum information processing, and beyond.

Abstract Image

Pockels激光直接驱动超快光学计量
激光的发明释放了光学计量学的潜力,导致了现代科学技术的许多进步。然而,这种对激光的依赖也给精密光学计量带来了瓶颈,因为它需要精密的光子基础设施来进行精确的激光波控制,从而导致有限的计量性能和显着的系统复杂性。在这里,我们通过展示具有多功能功能的波克尔斯激光器,将光学计量提升到一个新的水平,迈出了克服这一挑战的关键一步。该芯片级激光器实现了低至167 Hz的窄固有线宽和高达24 GHz的宽无模跳调谐范围。特别是,它提供了前所未有的高达20 EHz/s的频率啁啾速率和超过10 GHz的特殊调制带宽,这两个都比现有激光器大几个数量级。利用这种激光,我们成功地在0.4米的短距离内以40米/秒的速度测量速度,并在1米远的地方测量到第一宇宙速度——这是传统测距方法无法实现的壮举。同时,实现了距离测量,测距分辨率为2cm。此外,据我们所知,我们首次通过直接将激光锁定在外部参考气体电池上,而无需额外的外部光控制,实现了激光频率稳定的大幅简化架构。这种方法使激光长期稳定,在60分钟内频率波动仅为±6.5 MHz。所演示的Pockels激光器结合了优雅的高激光相干性、超快频率可重构性和优越的多功能能力。我们预计它将在通信、传感、自动驾驶、量子信息处理等多个领域产生深远影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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审稿时长
2.1 months
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