• Infrared and Laser Engineering
  • Vol. 51, Issue 12, 20220187 (2022)
Ganshang Si1,2, Jiaxiang Liu1, Zhengang Li1,2, Zhiqiang Ning1,2, and Yonghua Fang1,2
Author Affiliations
  • 1Key Laboratory of Environmental Optics and Technology, Anhui Institute of Optics and Fine Mechanics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China
  • 2University of Science and Technology of China, Hefei 230026, China
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    DOI: 10.3788/IRLA20220187 Cite this Article
    Ganshang Si, Jiaxiang Liu, Zhengang Li, Zhiqiang Ning, Yonghua Fang. Quartz tube enhanced Raman fiber probe for powder detection[J]. Infrared and Laser Engineering, 2022, 51(12): 20220187 Copy Citation Text show less
    References

    [1] Feng Zhang, Jinjia Guo, Chunhao Liu, et al. Development of an underwater combined Raman-fluorescence detection system and preliminary test. Infrared and Laser Engineering, 47, 0606006(2018).

    [2] Li Chen, Danyang Li, Feng Yang, et al. Fabrication of array flexible paper-based SERS microarray for bacterial detection. Optics and Precision Engineering, 28, 110-118(2020).

    [3] Yuqing He, Shuaiying Wei, Yixin Guo, et al. Research progress of remote detection with ultraviolet Raman spectroscopy. Chinese Optics, 12, 1249-1259(2019).

    [4] Jiaming Lv. Quantitative detection of rivaroxaban based on far-IR absorbance spectroscopy and Raman spectroscopy. Infrared and Laser Engineering, 50, 20210038(2021).

    [5] Xu Zhang, Mingxin Yu, Lianqing Zhu, et al. Raman mineral recognition method based on all-optical diffraction deep neural network. Infrared and Laser Engineering, 49, 20200221(2020).

    [6] Xiangyu Hou, Teng Qiu. Defects- and interface-enhanced Raman scattering in low-dimensional optoelectronic materials. Chinese Optics, 14, 170-181(2021).

    [7] Qingsheng Liu, Jinjia Guo, Dewang Yang, et al. A compact underwater Raman spectroscopy system with high sensitivity. Optics and Precision Engineering, 26, 8-13(2018).

    [8] Hao Xu, Yongkang Zhu, Yanfei Lu, et al. Development and biomedical application of raman probe. Laser & Optoelectronics Progress, 56, 110005(2019).

    [9] Chi Shu, Wei Zheng, Zhuo Wang, et al. Development and characterization of a disposable submillimeter fiber optic Raman needle probe for enhancing real-time in vivo deep tissue and biofluids Raman measurements. Optics Letters, 46, 5197-5200(2021).

    [10] K Milenko, S Yerolatsitis, A Aksnes, et al. Micro-lensed negative-curvature fibre probe for Raman spectroscopy. Sensors, 21, 8434(2021).

    [11] S Yerolatsitis, A Kufcsák, K Ehrlich, et al. Sub millimetre flexible fibre probe for background and fluorescence free Raman spectroscopy. J Biophotonics, 14, e202000488(2021).

    [12] M A Short, S Lam, A McWilliams, et al. Develop-ment and preliminary results of an endoscopic Raman probe for potential in vivo diagnosis of lung cancers. Optics Letters, 33, 711-713(2008).

    [13] Jianfeng Wang, M S Bergholt, Wei Zheng, et al. Development of a beveled fiber-optic confocal Raman probe for enhancing in vivo epithelial tissue Raman measurements at endoscopy. Optics Letters, 38, 2321-2323(2013).

    [14] F Jaillon, Wei Zheng, Zhiwei Huang. Beveled fiber-optic probe couples a ball lens for improving depth-resolved fluorescence measurements of layered tissue: Monte Carlo simulations. Physics in Medicine & Biology, 53, 937-951(2008).

    [15] P Matousek. Enhancement of laser radiation coupled into turbid media by using a unidirectional mirror. Journal of the Optical Society of America B, 25, 1223-1230(2008).

    [16] R K Nubling, J A Harrington. Launch conditions and mode coupling in hollow-glass waveguides. Optical Engineering, 37, 2454-2458(1998).

    Ganshang Si, Jiaxiang Liu, Zhengang Li, Zhiqiang Ning, Yonghua Fang. Quartz tube enhanced Raman fiber probe for powder detection[J]. Infrared and Laser Engineering, 2022, 51(12): 20220187
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