Raman spectroscopy, which probes fine molecular vibrations, is crucial for interpreting covalent bonds, chemical compositions, and other molecular dynamics in mixtures via their vibrational fingerprint signatures. However, over the past few decades, longstanding barriers have been encountered in both the sensitivity and speed of Raman spectroscopy, limiting its ability to be extended to broader biochemical applications. Here, we introduce a versatile analytical workhorse, the fiber-array Raman engine (termed FIRE). In FIRE, a distinctive fiber array bundle delays the Raman shifts at a scale of 3-960âns, and a highly dynamic single-channel photon-counting detector achieves spectral measurements that outperform the best commercial confocal Raman microscope. Crucially, FIRE features a major advantage of nonrepetitive single-shot spectra measurement at a MHz repetition rate with a full Raman span (-300-4300 cm(-1)) covering the fingerprint, silent, C-H, and O-H regions and therefore represents a major step toward overall improving of sensitivity, speed, and spectral span. We demonstrate full Raman spectral imaging of the metabolic activity of intact Caenorhabditis elegans. FIRE exhibits superior performance to a Raman microscope in all aspects, including autofluorescence suppression, and will elucidate a variety of biochemical applications.
Photon-counting Raman spectroscopy at a MHz spectral rate for biochemical imaging of an entire organism.
以兆赫兹光谱速率进行光子计数拉曼光谱,用于对整个生物体进行生化成像
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作者:Li Sicheng, Li Haozheng, Li Yiran, Zhang Qi, Wang Shuai, Lv Xin, Yan Shuai, Huang Zhiliang, Liu Xingbo, Zhou Qipei, Zhang Bi, Xiao Long, Chen Yage, Wang Zhe, Lu Wanjun, Shen Aiguo, Liu Jianfeng, Wang Ping
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Apr 23; 16(1):3808 |
| doi: | 10.1038/s41467-025-59030-8 | ||
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