• Infrared and Laser Engineering
  • Vol. 54, Issue 5, 20240615 (2025)
Xiaoshuai MA1, Dongxu ZHU1, Zhuoren WAN1, and Ming YAN1,2
Author Affiliations
  • 1State Key Laboratory of Precision Spectroscopy, and Hainan Institute, East China Normal University, Shanghai 200062, China
  • 2Chongqing Key Laboratory of Precision Optics, Chongqing Institute of East China Normal University, Chongqing 401120, China
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    DOI: 10.3788/IRLA20240615 Cite this Article
    Xiaoshuai MA, Dongxu ZHU, Zhuoren WAN, Ming YAN. Two-dimensional infrared light field manipulation based on a digital micromirror device(invited)[J]. Infrared and Laser Engineering, 2025, 54(5): 20240615 Copy Citation Text show less
    References

    [1] N JI, J C MAGEE, E BETZIG. High-speed, low-photodamage nonlinear imaging using passive pulse splitters. Nature Methods, 5, 197-202(2008).

    [2] C KERSE, H KALAYCOĞLU, P ELAHI et al. Ablation-cooled material removal with ultrafast bursts of pulses. Nature, 537, 84-88(2016).

    [3] Teng DING, Xuehui WANG, Guande WANG. Welding of fused silica by using high repetition frequency femtosecond laser. Chinese Journal of Lasers, 45, 46-52(2018).

    [4] J LEE, Y J KIM, K LEE et al. Time-of-flight measurement with femtosecond light pulses. Nature Photonics, 4, 716-720(2010).

    [5] Z WEN, B PENG, M YAN et al. Broadband up-conversion mid-infrared time-stretch spectroscopy. Laser & Photonics Reviews, 18, 2300630(2024).

    [6] X REN, J PAN, M YAN et al. Dual-comb optomechanical spectroscopy. Nature Communications, 14, 5037(2023).

    [7] M TAMAMITSU, K NAKAGAWA, R HORISAKI et al. Design for sequentially timed all-optical mapping photography with optimum temporal performance. Optics Letters, 40, 633-636(2015).

    [8] K NAKAGAWA, A IWASAKI, Y OISHI et al. Sequentially timed all-optical mapping photography (STAMP). Nature Photonics, 8, 695-700(2014).

    [9] T LV, B HAN, M YAN et al. Ultrahigh-speed coherent anti-stokes Raman spectroscopy with a hybrid dual-comb source. ACS Photonics, 10, 2964-2971(2023).

    [10] Kun DU, Xiaowei LI, Bingdong YANG. Research progress of femtosecond laser microhole drilling on non-metallic materials. Laser & Optoelectronics Progress, 57, 215-230(2020).

    [11] F PEPE, S CRISTIANI, R REBOLO et al. ESPRESSO at VLT-on-Sky performance and first results. Astronomy & Astrophysics, 645, 96(2021).

    [12] Z FAN, H WANG, X JIANG et al. The Xinglong 2.16-m telescope: current instruments and scientific projects. Publications of the Astronomical Society of the Pacific, 128, 115005(2016).

    [13] M SHIRASAKI. Large angular dispersion by a virtually imaged phased array and its application to a wavelength demultiplexer. Optics Letters, 21, 366-368(1996).

    [14] Z MENG, V V YAKOVLEV. Precise determination of Brillouin scattering spectrum using a Virtually Imaged Phase Array (VIPA) spectrometer and Charge-Coupled Device (CCD) camera. Applied Spectroscopy, 70, 1356-1363(2016).

    [15] Z LI, Z ZANG, Z WEI et al. Multi-user accessible indoor infrared optical wireless communication systems employing VIPA-based 2D optical beam-steering technique. Optics Express, 29, 20175-20189(2021).

    [16] Wenjie JI, Zhongwei TAN. Research on angular dispersion uniformity based on the virtual image phase array used in spectral detection.. Spectroscopy and Spectral Analysis, 44, 1827-1834(2024).

    [17] Hao ZHOU, Weixiong ZHAO, Bingxuan LYU. High-resolution and broadband spectral measurement of CO2 based on virtually imaged phased array spectrometer. Acta Optica Sinica, 43, 189914-194(2023).

    [18] G H LEE, S XIAO, A M WEINER. Optical dispersion compensator with >4 000 ps/nm tuning range using a Virtually Imaged Phased Array (VIPA) and Spatial Light Modulator (SLM). IEEE Photonics Technology Letters, 18, 1819-1821(2006).

    [19] F C ROBERTS, H J LEWANDOWSKI, B F HOBSON et al. A rapid, spatially dispersive frequency comb spectrograph aimed at gas phase chemical reaction kinetics. Molecular Physics, 118, 1733116(2020).

    [20] S XIAO, A M WEINER, C LIN. A dispersion law for virtually imaged phased-array spectral dispersers based on paraxial wave theory. IEEE Journal of Quantum Electronics, 40, 420-426(2004).

    [21] X HU, Q SUN, J LI et al. Spectral dispersion modeling of virtually imaged phased array by using angular spectrum of plane waves. Optics Express, 23, 1-12(2015).

    [22] K K TSIA, K GODA, D CAPEWELL et al. Performance of serial time-encoded amplified microscope. Optics Express, 18, 10016-10028(2010).

    Xiaoshuai MA, Dongxu ZHU, Zhuoren WAN, Ming YAN. Two-dimensional infrared light field manipulation based on a digital micromirror device(invited)[J]. Infrared and Laser Engineering, 2025, 54(5): 20240615
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