A wideband, high-resolution vector spectrum analyzer for integrated photonics

频谱分析仪 宽带 激光器 带宽(计算) 光子学 宽带 计算机科学 可调谐激光器 光谱分辨率 分光计 光学 物理 光电子学 电子工程 谱线 电信 工程类 天文
作者
Yi-Han Luo,Baoqi Shi,Wei Sun,Ruiyang Chen,Sanli Huang,Zhongkai Wang,Jinbao Long,Chen Shen,Zhichao Ye,Hairun Guo,Junqiu Liu
出处
期刊:Light-Science & Applications [Springer Nature]
卷期号:13 (1) 被引量:6
标识
DOI:10.1038/s41377-024-01435-z
摘要

Abstract The analysis of optical spectra—emission or absorption—has been arguably the most powerful approach for discovering and understanding matter. The invention and development of many kinds of spectrometers have equipped us with versatile yet ultra-sensitive diagnostic tools for trace gas detection, isotope analysis, and resolving hyperfine structures of atoms and molecules. With proliferating data and information, urgent and demanding requirements have been placed today on spectrum analysis with ever-increasing spectral bandwidth and frequency resolution. These requirements are especially stringent for broadband laser sources that carry massive information and for dispersive devices used in information processing systems. In addition, spectrum analyzers are expected to probe the device’s phase response where extra information is encoded. Here we demonstrate a novel vector spectrum analyzer (VSA) that is capable of characterizing passive devices and active laser sources in one setup. Such a dual-mode VSA can measure loss, phase response, and dispersion properties of passive devices. It also can coherently map a broadband laser spectrum into the RF domain. The VSA features a bandwidth of 55.1 THz (1260–1640 nm), a frequency resolution of 471 kHz, and a dynamic range of 56 dB. Meanwhile, our fiber-based VSA is compact and robust. It requires neither high-speed modulators and photodetectors nor any active feedback control. Finally, we employ our VSA for applications including characterization of integrated dispersive waveguides, mapping frequency comb spectra, and coherent light detection and ranging (LiDAR). Our VSA presents an innovative approach for device analysis and laser spectroscopy, and can play a critical role in future photonic systems and applications for sensing, communication, imaging, and quantum information processing.
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