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用于可见光集成光子学的超精细跃迁参考矢量光谱分析仪。

A hyperfine-transition-referenced vector spectrum analyzer for visible-light integrated photonics.

作者信息

Shi Baoqi, Zheng Ming-Yang, Hu Yue, Zhao Yunkai, Shang Zhenyuan, Zhong Zeying, Chen Zhen, Luo Yi-Han, Long Jinbao, Sun Wei, Ma Wenbo, Xie Xiu-Ping, Gao Lan, Shen Chen, Wang Anting, Liang Wei, Zhang Qiang, Liu Junqiu

机构信息

Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, 230026, China.

International Quantum Academy, Shenzhen, 518048, China.

出版信息

Nat Commun. 2025 Jul 31;16(1):7025. doi: 10.1038/s41467-025-61970-0.

Abstract

Integrated photonics has been successfully established in the near-infrared (NIR) telecommunication bands. With the soaring demand in biosensing, quantum information and transportable atomic clocks, extensive endeavors have been stacked on translating integrated photonics into the visible spectrum. Demonstrations of visible-light lasers, frequency combs, and atom traps highlight the prospect of creating chip-based optical atomic clocks that can make timing and metrology ubiquitous. A pillar to the development of visible-light integrated photonics is characterization techniques featuring high frequency resolution and wide spectral coverage, which however remain elusive. Here, we demonstrate a vector spectrum analyzer (VSA) for visible-light integrated photonics, offering spectral bandwidth of 766-795 and 518-541 nm. The VSA is rooted in widely chirping, high-power, narrow-linewidth, mode-hop-free lasers that are frequency-doubled from the near-infrared via efficient, broadband CPLN waveguides. The VSA is further referenced to hyperfine structures of alkaline atoms and iodine molecules, enabling megahertz frequency accuracy. We apply our VSA to showcase the characterization of loss, dispersion and phase response of passive integrated devices, as well as densely spaced spectra of mode-locked lasers. Leveraging individual operations at 518-541, 766-795, 1020-1098, and 1260-1640 nm bands, our VSA achieves an aggregate characterization bandwidth exceeding one octave. This capability establishes the VSA as an invaluable diagnostic tool for spectroscopy, nonlinear optical processing, imaging, and quantum interfaces with atomic systems.

摘要

集成光子学已在近红外(NIR)电信频段成功确立。随着生物传感、量子信息和便携式原子钟需求的飙升,人们为将集成光子学拓展到可见光谱付出了巨大努力。可见光激光器、频率梳和原子阱的演示突出了制造基于芯片的光学原子钟的前景,这种原子钟可使计时和计量无处不在。可见光集成光子学发展的一个支柱是具有高频率分辨率和宽光谱覆盖范围的表征技术,然而这些技术仍然难以实现。在此,我们展示了一种用于可见光集成光子学的矢量光谱分析仪(VSA),其光谱带宽为766 - 795纳米和518 - 541纳米。该VSA基于通过高效宽带CPLN波导从近红外频率倍频得到的宽啁啾、高功率、窄线宽、无模式跳变激光器。VSA还以碱金属原子和碘分子的超精细结构为参考,实现了兆赫兹级的频率精度。我们应用VSA展示了无源集成器件的损耗、色散和相位响应的表征,以及锁模激光器的密集光谱。利用在518 - 541、766 - 795、1020 - 1098和1260 - 1640纳米波段的单独操作,我们的VSA实现了超过一个倍频程的总表征带宽。这种能力使VSA成为光谱学、非线性光学处理、成像以及与原子系统的量子接口中不可或缺的诊断工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdef/12313864/e3a85b42c42a/41467_2025_61970_Fig1_HTML.jpg

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