Research of Mid-Infrared Time-Stretch Frequency Upconversion Hyperspectral Imaging System

被引:0
|
作者
Peng, Bo [1 ]
Wen, Zhao-yang [1 ]
Wen, Qi [1 ]
Liu, Ting-ting [1 ,2 ]
Xing, Shuai [3 ]
Wu, Teng-fei
Yan, Ming [1 ,2 ]
机构
[1] East China Normal Univ, State Key Lab Precis Spect, Shanghai 200062, Peoples R China
[2] Chongqing Inst East China Normal Univ, Chongqing Key Lab Precis Opt, Chongqing 401121, Peoples R China
[3] AV Changcheng Inst Metrol & Measurement, Beijing 100095, Peoples R China
关键词
Mid-infrared; Time-stretch; Frequency upconversion; Hyperspectral imaging;
D O I
10.3964/j.issn.1000-0593(2024)11-3037-06
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
Hyperspectral imaging is non-contact, non destructive detection method to analyze substances chemical composition, physical properties, and morphology. Limited by the response speed and inherent noise of the detector.it is difficult for traditional hyperspectral imaging techniques to achieve high speed and high signal to noise detection of molecular fingerprint spectra in the mid-infrared band. With the advantages of high measurement speed, high spectral resolution, and wide spectral coverage, the spectroscopy technology based on time stretch frequency upconversion provides a reliable method for rapidlyanalyzing the type and morphology of the samples when combined with hyperspectral imaging technology. In thispaper. a mid infrared time stretch frequency upconversion hyperspectral imaging system was constructed. The average power of the 1 047 nm pump pulse and the 1 550 nm signal pulse generated by the same laser source is 2 W and 100 mW. respectively. Using synchronous pump technology, mid-infrared pulses were generated in one periodically poled lithium niobate crystal, and frequency upconverted into near infrared pulses in another. This process transferred the mid infrared molecular fingerprint spectra to the near infrared band, which can effectively address the problem of lacking high speed and low noise detectors in the mid infrared band. By tuning the operating temperature and working channels of the crystal, the detection range of the system can cover 2700-3 900 mm, enabling the measurement of multiple samples, Combining the time stretch method with hyperspectral imaging technology, the benzene solution's absorption spectra and spatial distribution information in a colorimetric dish were measured through point by point scanning. The spectral data obtained highly matched the results from a Fourier transform infrared spectrometer. Moreover, the system could perform hyperspectral imaging of a 600 mx 1200 pm spatial region within 8 s. The acquisition time for a single pixel was 12. 9 ns. and a spectral measurement speed of 77.6 MS (-1 )pectra s and spectral resolution of 5.8 cm(-1) was achieved. These results verified the systemhas the potential to measure the spectra and spatial distributionof liquid molecules within the spectral coverage range with highspeed and highresolution. This paper solves the problems of slow response speed, long integration time, and low signal to noise ratio of traditional hyperspectral methods in the mid-infrared band. It enables the spectraldetection and morphological measurement of multi-component samples with a spectral refresh rate of 10(7) frames per second. It could provide a new approach for imaging analysis in material and biological fields.
引用
收藏
页码:3037 / 3042
页数:6
相关论文
共 18 条
  • [1] Search for a new heavy scalar particle decaying into a Higgs boson and a new scalar singlet in final states with one or two light leptons and a pair of τ-leptons with the ATLAS detector
    Aad, G.
    Abbott, B.
    Abeling, K.
    Abicht, N. J.
    Abidi, S. H.
    Aboulhorma, A.
    Abramowicz, H.
    Abreu, H.
    Abulaiti, Y.
    Acharya, B. S.
    Bourdarios, C. Adam
    Adamczyk, L.
    Addepalli, S. V.
    Addison, M. J.
    Adelman, J.
    Adiguzel, A.
    Adye, T.
    Affolder, A. A.
    Afik, Y.
    Agaras, M. N.
    Agarwala, J.
    Aggarwal, A.
    Agheorghiesei, C.
    Ahmad, A.
    Ahmadov, F.
    Ahmed, W. S.
    Ahuja, S.
    Ai, X.
    Aielli, G.
    Aikot, A.
    Tamlihat, M. Ait
    Aitbenchikh, B.
    Aizenberg, I.
    Akbiyik, M.
    Akesson, T. P. A.
    Akimov, A. V.
    Akiyama, D.
    Akolkar, N. N.
    Al Khoury, K.
    Alberghi, G. L.
    Albert, J.
    Albicocco, P.
    Albouy, G. L.
    Alderweireldt, S.
    Aleksa, M.
    Aleksandrov, I. N.
    Alexa, C.
    Alexopoulos, T.
    Alfonsi, F.
    Algren, M.
    [J]. JOURNAL OF HIGH ENERGY PHYSICS, 2023, 2023 (10)
  • [2] Mid-infrared absorption spectroscopy with enhanced detection performance for biomedical applications
    An, Donglai
    Sun, Fangyuan
    Bian, Yupei
    Ni, Jing
    Wang, Qi Jie
    Yu, Xia
    [J]. APPLIED SPECTROSCOPY REVIEWS, 2023, 58 (10) : 834 - 868
  • [3] Diamond-blade diced trapezoidal ridge waveguides in YCOB crystal for second harmonic generation
    Chen, Chen
    Lu, Qingming
    Akhmadaliev, Shavkat
    Zhou, Shengqiang
    [J]. OPTICS AND LASER TECHNOLOGY, 2020, 126
  • [4] High-Speed Fourier-Transform Infrared Spectroscopy with Phase-Controlled Delay Line
    Hashimoto, Kazuki
    Badarla, Venkata Ramaiah
    Ideguchi, Takuro
    [J]. LASER & PHOTONICS REVIEWS, 2021, 15 (01)
  • [5] Real-time spectral interferometry probes the internal dynamics of femtosecond soliton molecules
    Herink, G.
    Kurtz, F.
    Jalali, B.
    Solli, D. R.
    Ropers, C.
    [J]. SCIENCE, 2017, 356 (6333) : 50 - 53
  • [6] Jacques SL, 2013, Physien in Medicine and Biology, V58
  • [7] jie LU Lin, 2022, Infrared and Laser Engineering, V51
  • [8] Mid-infrared upconversion based hyperspectral imaging
    Junaid, Saher
    Tomko, Jan
    Semtsiv, Mykhaylo P.
    Kischkat, Jan
    Masselink, W. Ted
    Pedersen, Christian
    Tidemand-Lichtenberg, Peter
    [J]. OPTICS EXPRESS, 2018, 26 (03): : 2203 - 2211
  • [9] Highly efficient mid-infrared difference-frequency generation using synchronously pulsed fiber lasers
    Murray, R. T.
    Runcorn, T. H.
    Kelleher, E. J. R.
    Taylor, J. R.
    [J]. OPTICS LETTERS, 2016, 41 (11) : 2446 - 2449
  • [10] Nan CHEN, 2021, Spectroscopy and Spectral Analysis, V41, P11