• Journal of Infrared and Millimeter Waves
  • Vol. 41, Issue 1, 2021391 (2022)
Yu-Hua GUI1、2, Jin-Ning LI1、2, Mei-Zhu WANG1、*, and Zhi-Ping HE1、*
Author Affiliations
  • 1Key Laboratory of Space Active Opto-Electronics Technology,Shanghai Institute of Technical Physics,Chinese Academy of Sciences,Shanghai 200083,China
  • 2University of Chinese Academy of Sciences,Beijing 100049,China
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    DOI: 10.11972/j.issn.1001-9014.2022.01.004 Cite this Article
    Yu-Hua GUI, Jin-Ning LI, Mei-Zhu WANG, Zhi-Ping HE. Research and application of spectroscopic techniques in lunar and Mars exploration missions[J]. Journal of Infrared and Millimeter Waves, 2022, 41(1): 2021391 Copy Citation Text show less
    References

    [1] C Li, C Wang, Y Wei et al. China’s present and future lunar exploration program. Science, 365, 238-239(2019).

    [2] H X SUN, H J LI, B M ZHANG et al. Achievements and Prospect of Payloads Technology in Chinese Lunar and Deep Space Exploration. Journal of Deep Space Exploration, 4, 495-509(2017).

    [3] R O Green, C Pieters, P Mouroulis et al. The Moon Mineralogy Mapper (M3) imaging spectrometer for lunar science: Instrument description, calibration, on-orbit measurements, science data calibration and on-orbit validation. Journal of Geophysical Research: Planets, 116(2011).

    [4] K Ennico, M Shirley, A Colaprete et al. The Lunar Crater Observation and Sensing Satellite (LCROSS) Payload Development and Performance in Flight. Space Science Reviews, 167, 23-69(2012).

    [5] Y Langevin, F Poulet, J P Bibring et al. Summer evolution of the north polar cap of Mars as observed by OMEGA/Mars express. Science, 307, 1581-1584(2005).

    [6] S Murchie, R Arvidson, P Bedini et al. Compact Reconnaissance Imaging Spectrometer for Mars (CRISM) on Mars Reconnaissance Orbiter (MRO). Journal of Geophysical Research, 112(2007).

    [7] B C ZHAO, J F YANG, L Y CHANG et al. Optical Design and On-orbit Performance Evaluation of The Imaging Spectrometer for Chang’e-1 Lunar Satellite. Acta Photonica Sinica, 38, 479-483(2009).

    [8] Z He, R Xu, C Li et al. Mars Mineralogical Spectrometer (MMS) on the Tianwen-1 Mission. Space Science Reviews, 217(2021).

    [9] Z P He, B Wu, R Xu et al. The detection mechanism and instrument characteristics of the Mars Mineralogical Spectrometer (MMS) for the Tianwen-1 orbiter. Sci Sin Tec(2021).

    [10] R C Wiens, S Maurice, B Barraclough et al. The ChemCam Instrument Suite on the Mars Science Laboratory (MSL) Rover: Body Unit and Combined System Tests. Space Science Reviews, 170, 167-227(2012).

    [11] R C Wiens, S Maurice, S H Robinson et al. The SuperCam Instrument Suite on the NASA Mars 2020 Rover: Body Unit and Combined System Tests. Space Science Reviews, 217(2021).

    [12] J M Reess, M Bonafous, L Lapauw et al. International Conference on Space Optics — ICSO, 2018(2018).

    [13] Z P He, B Y Wang, G Lv et al. Visible and near-infrared imaging spectrometer and its preliminary results from the Chang’E 3 project. Review of Scientific Instruments, 85, 083104(2014).

    [14] C Zhou, Y Jia, J Liu et al. Scientific objectives and payloads of the lunar sample return mission—Chang’E-5. Advances in Space Research(2021).

    [15] J Z Liu, C B Hu, F C Pang et al. Strategy of deep space exploration. Sci Sin Tech, 50, 1126-1139(2020).

    [16] H L Lin, C Y Ding, X S Xu et al. Review on the in-situ spectroscopy and radar remote sensing on the Moon. Reviews of Geophysics and Planetary Physics, 52, 373-390(2021).

    [17] Z Y Pei, J Hou, Q Wang. Applications of optical technology in lunar and deep space exploration in China(Invited). Infrared and Laser Engineering, 49, 19-27(2020).

    [18] C L LI, J J LIU, W ZUO et al. Progress of China’s Lunar Exploration(2011-2020). Chinese Journal of Space Science, 41, 68-75(2021).

    [19] O I Korablev, D A Belyaev, Y S Dobrolenskiy et al. Acousto-optic tunable filter spectrometers in space missions [Invited]. Applied Optics, 57, C103-C119(2018).

    [20] Z P He, B Y Wang, G Lu et al. Operating principles and detection characteristics of the Visible and Near-Infrared Imaging Spectrometer in the Chang'e-3. Research in Astronomy and Astrophysics, 14, 1567-1577(2014).

    [21] C L Li, R Xu, G Lv et al. Detection and calibration characteristics of the visible and near-infrared imaging spectrometer in the Chang’e-4. Review of Scientific Instruments, 90, 103106(2019).

    [22] Z P He, C L Li, R Xu et al. Spectrometers based on acousto-optic tunable filters for in-situ lunar surface measurement. Journal of Applied Remote Sensing, 13(2019).

    [23] W Xu, X Liu, Z Yan et al. The MarSCoDe Instrument Suite on the Mars Rover of China’s Tianwen-1 Mission. Space Science Reviews, 217(2021).

    [24] Y Zou, Y Zhu, Y Bai et al. Scientific objectives and payloads of Tianwen-1, China’s first Mars exploration mission. Advances in Space Research, 67, 812-823(2021).

    [25] C L LI, J J LIU, Y GENG et al. Scientific Objectives and Payload Configuration of China’s First Mars Exploration Mission. Journal of Deep Space Exploration, 5, 406-413(2018).

    [26] C M Pieters, J N Goswami, R N Clark et al. Character and Spatial Distribution of OH/H2O on the Surface of the Moon Seen by M-3 on Chandrayaan-1. Science, 326, 568-572(2009).

    [27] J P Williams, D A Paige, B T Greenhagen et al. The global surface temperatures of the moon as measured by the diviner lunar radiometer experiment. Icarus, 283, 300-325(2017).

    [28] Z Ling, B L Jolliff, A Wang et al. Correlated compositional and mineralogical investigations at the Chang′e-3 landing site. Nature Communications, 6, 8880(2015).

    [29] J Zhang, W Yang, S Hu et al. Volcanic history of the Imbrium basin: A close-up view from the lunar rover Yutu. Proceedings of the National Academy of Sciences, 112, 5342-5347(2015).

    [30] C Li, D Liu, B Liu et al. Chang’E-4 initial spectroscopic identification of lunar far-side mantle-derived materials. Nature, 569, 378-382(2019).

    [31] Y Yang, S Li, M-H Zhu et al. Impact remnants rich in carbonaceous chondrites detected on the Moon by the Chang’e-4 rover. Nature Astronomy(2021).

    [32] J Bibring, Y Langevin, J Mustard et al. Global Mineralogical and Aqueous Mars History Derived from OMEGA/Mars Epxress Data. Science, 312, 400-404(2006).

    [33] J F Mustard, S L Murchie, S M Pelkey et al. Hydrated silicate minerals on Mars observed by the Mars Reconnaissance Orbiter CRISM instrument. Nature, 454, 305-309(2008).

    [34] V Formisano, S Atreya, T Encrenaz et al. Detection of methane in the atmosphere of Mars. Science, 306, 1758-1761(2004).

    [35] C R Webster, P R Mahaffy, S K Atreya et al. Background levels of methane in Mars' atmosphere show strong seasonal variations. Science, 360, 1093(2018).

    [36] O Korablev, A C Vandaele, F Montmessin et al. No detection of methane on Mars from early ExoMars Trace Gas Orbiter observations. Nature, 568, 517-520(2019).

    [37] Z C Shen, X P Ouyang, H Gao. Demand for Aerospace Materials and Technology for China's Deep Space Exploration. Aerospace Materials & Technology, 51, 1-14(2021).

    Yu-Hua GUI, Jin-Ning LI, Mei-Zhu WANG, Zhi-Ping HE. Research and application of spectroscopic techniques in lunar and Mars exploration missions[J]. Journal of Infrared and Millimeter Waves, 2022, 41(1): 2021391
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