| [1] | Zhang, X. S. et al. A large-scale microelectromechanical-systems-based silicon photonics LiDAR. Nature 603, 253-258 (2022). doi: 10.1038/s41586-022-04415-8 |
| [2] | MacDonald, R. I. Frequency domain optical reflectometer. Applied Optics 20, 1840-1844 (1981). doi: 10.1364/AO.20.001840 |
| [3] | Yang, Q. F. et al. Efficient microresonator frequency combs. eLight 4, 18 (2024). doi: 10.1186/s43593-024-00075-5 |
| [4] | Nguyen, D. A. et al. Real-time monitoring of fast gas dynamics with a single-molecule resolution by frequency-comb-referenced plasmonic phase spectroscopy. PhotoniX 5, 22 (2024). doi: 10.1186/s43074-024-00140-9 |
| [5] | Cen, Q. Q. et al. Microtaper leaky-mode spectrometer with picometer resolution. eLight 3, 9 (2023). doi: 10.1186/s43593-023-00041-7 |
| [6] | Ren, Y. L. et al. Athermal forward stimulated Brillouin scattering. Laser & Photonics Reviews 19, 2402071 (2025). doi: 10.1002/lpor.202402071 |
| [7] | Amann, M. C. et al. Laser ranging: a critical review of unusual techniques for distance measurement. Optical Engineering 40, 10-19 (2001). doi: 10.1117/1.1330700 |
| [8] | Kim, C., Jung, Y. & Lee, S. FMCW LiDAR system to reduce hardware complexity and post-processing techniques to improve distance resolution. Sensors 20, 6676 (2020). doi: 10.3390/s20226676 |
| [9] | Snigirev, V. et al. Ultrafast tunable lasers using lithium niobate integrated photonics. Nature 615, 411-417 (2023). doi: 10.1038/s41586-023-05724-2 |
| [10] | Fröch, J. E. et al. Real time full-color imaging in a Meta-optical fiber endoscope. eLight 3, 13 (2023). doi: 10.1186/s43593-023-00044-4 |
| [11] | Shao, L. Y. et al. Artificial intelligence-driven distributed acoustic sensing technology and engineering application. PhotoniX 6, 4 (2025). doi: 10.1186/s43074-025-00160-z |
| [12] | Ula, R. K., Noguchi, Y. & Iiyama, K. Three-dimensional object profiling using highly accurate FMCW optical ranging system. Journal of Lightwave Technology 37, 3826-3833 (2019). doi: 10.1109/JLT.2019.2921353 |
| [13] | Riemensberger, J. et al. Massively parallel coherent laser ranging using a soliton microcomb. Nature 581, 164-170 (2020). doi: 10.1038/s41586-020-2239-3 |
| [14] | Dong, Y. K. et al. Frequency-modulated continuous-wave LIDAR and 3D imaging by using linear frequency modulation based on injection locking. Journal of Lightwave Technology 39, 2275-2280 (2021). doi: 10.1109/JLT.2021.3050772 |
| [15] | Ding, Z. Y. et al. Distributed optical fiber sensors based on optical frequency domain reflectometry: a review. Sensors 18, 1072 (2018). doi: 10.3390/s18041072 |
| [16] | Qu, S. et al. Recent advancements in optical frequency-domain reflectometry: a review. IEEE Sensors Journal 23, 1707-1723 (2023). |
| [17] | Ding, Z. Y. et al. Advances in distributed optical fiber sensors based on optical frequency-domain reflectometry: a review. IEEE Sensors Journal 23, 26925-26941 (2023). doi: 10.1109/JSEN.2023.3317231 |
| [18] | Zhang, L. et al. Optical steelyard: high-resolution and wide-range refractive index sensing by synergizing Fabry–Perot interferometer with metafibers. PhotoniX 5, 24 (2024). doi: 10.1186/s43074-024-00138-3 |
| [19] | Song, J. et al. Long-range high spatial resolution distributed temperature and strain sensing based on optical frequency-domain reflectometry. IEEE Photonics Journal 6, 6801408 (2014). doi: 10.1109/jphot.2014.2320742 |
| [20] | Froggatt, M. & Moore, J. High-spatial-resolution distributed strain measurement in optical fiber with Rayleigh scatter. Applied Optics 37, 1735-1740 (1998). doi: 10.1364/AO.37.001735 |
| [21] | Lou, X. T. et al. Simultaneous measurement of gas absorption spectra and optical path lengths in a multipass cell by FMCW interferometry. Optics Letters 43, 2872-2875 (2018). doi: 10.1364/OL.43.002872 |
| [22] | Liu, X. et al. Multi-point and high-sensitivity hydrogen sensor based on OFDR and fiber-tip microcavities. Journal of Lightwave Technology 43, 6994-7000 (2025). doi: 10.1109/JLT.2025.3561329 |
| [23] | Yu, Y. F. et al. Distributed thermal monitoring of lithium ion batteries with optical fibre sensors. Journal of Energy Storage 39, 102560 (2021). doi: 10.1016/j.est.2021.102560 |
| [24] | Huang, J. Q. et al. Distributed fiber optic sensing to assess in-live temperature imaging inside batteries: Rayleigh and FBGs. Journal of the Electrochemical Society 168, 060520 (2021). doi: 10.1149/1945-7111/ac03f0 |
| [25] | Zhu, Z. D. et al. Temperature-compensated distributed refractive index sensor based on an etched multi-core fiber in optical frequency domain reflectometry. Optics Letters 46, 4308-4311 (2021). doi: 10.1364/OL.432405 |
| [26] | Zhang, Y. W. et al. Ultrafast and wideband optical vector analyzer based on optical dual linear-frequency modulation. IEEE Photonics Technology Letters 35, 1055-1058 (2023). doi: 10.1109/LPT.2023.3298899 |
| [27] | Lou, X. T. et al. Gas sensing with 7-decade dynamic range by laser vector spectroscopy combining absorption and dispersion. Photonics Research 11, 1687-1693 (2023). doi: 10.1364/PRJ.492651 |
| [28] | Chernin, S. M. & Barskaya, E. G. Optical multipass matrix systems. Applied Optics 30, 51-58 (1991). doi: 10.1364/AO.30.000051 |
| [29] | Lou, X. T. et al. Multi-point spectroscopic gas sensing based on coherent FMCW interferometry. Optics Express 28, 9014-9026 (2020). doi: 10.1364/OE.389746 |
| [30] | Zhu, Z. D. et al. Multiplexing of Fabry-Pérot sensor by frequency modulated continuous wave interferometry for quais-distributed sensing application. Journal of Lightwave Technology 39, 4529-4534 (2021). doi: 10.1109/JLT.2021.3071718 |
| [31] | Huang, J. Q. et al. Monitoring battery electrolyte chemistry via in-operando tilted fiber Bragg grating sensors. Energy & Environmental Science 14, 6464-6475 (2021). doi: 10.1039/D1EE02186A |
| [32] | Cao-Paz, A. M. et al. A multi-point sensor based on optical fiber for the measurement of electrolyte density in lead-acid batteries. Sensors 10, 2587-2608 (2010). doi: 10.3390/s100402587 |