用于 1572 nm 波长二氧化碳探测的星载电光双梳状激光雷达的波长优化

IF 2 3区 物理与天体物理 Q3 OPTICS Applied Physics B Pub Date : 2024-07-24 DOI:10.1007/s00340-024-08286-x
Zheng Liu, Tengteng Xia, Xiaopeng Zhu, Juxin Yang, Jiqiao Liu, Weibiao Chen
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摘要

星载综合路径差分吸收(IPDA)激光雷达可以测量二氧化碳的全球分布。在这里,我们利用 1572 nm 的电光双梳束干涉仪模拟了对 R16 吸收线的测量。我们引入了一个综合建模和检索框架,以评估激光雷达测量大气中二氧化碳柱平均值的能力。评估结合了数据模拟和线性化误差分析,以解决检索中的非线性问题。我们的研究结果表明,将任何采样波长定位在吸收峰值都会使随机误差显著增加约 30%。激光雷达可以采用最佳波长策略,在这种情况下,波长偏差几乎没有影响,但仍必须考虑大气温度和压力的影响。我们利用地球物理数据进行了全面的全球评估,比较了 3 到 17 个波长的结果。将 20 W 发射功率分布在 11 个波长上,可对地球表面大部分区域进行误差低于 0.9 ppm 的测量。
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Wavelength optimization of space-borne electro-optic dual-comb lidar for CO2 detection at 1572 nm

The space-borne Integrated Path Differential Absorption (IPDA) lidar can measure the global distribution of CO2. Here, we simulate measurements on the R16 absorption line employing a 1572 nm electro-optic dual-comb interferometer. We introduce a comprehensive modeling and retrieval framework to assess the lidar’s capability in measuring the column-averaged of CO2 in the atmosphere. The assessment combines data simulation with linearization error analysis to solve the nonlinearity in retrieval. Our findings suggest that positioning any sampling wavelength at the absorption peak will significantly increase the random error by about 30%. The lidar can operate with an optimal wavelength strategy where the wavelength bias has virtually no effect, but it must still account for the effects of atmospheric temperature and pressure. We performed a comprehensive global evaluation using geophysical data, comparing results across 3 to 17 wavelengths. Distributing 20 W launched power over 11 wavelengths enables measurement with an error below 0.9 ppm over most of the Earth’s surface.

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来源期刊
Applied Physics B
Applied Physics B 物理-光学
CiteScore
4.00
自引率
4.80%
发文量
202
审稿时长
3.0 months
期刊介绍: Features publication of experimental and theoretical investigations in applied physics Offers invited reviews in addition to regular papers Coverage includes laser physics, linear and nonlinear optics, ultrafast phenomena, photonic devices, optical and laser materials, quantum optics, laser spectroscopy of atoms, molecules and clusters, and more 94% of authors who answered a survey reported that they would definitely publish or probably publish in the journal again Publishing essential research results in two of the most important areas of applied physics, both Applied Physics sections figure among the top most cited journals in this field. In addition to regular papers Applied Physics B: Lasers and Optics features invited reviews. Fields of topical interest are covered by feature issues. The journal also includes a rapid communication section for the speedy publication of important and particularly interesting results.
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