Compact high-resolution IR spectrometer for atmospheric studies

被引:17
作者
Korablev, OI [1 ]
Bertaux, JL [1 ]
Vinogradov, II [1 ]
机构
[1] Space Res Inst, IKI, F-91371 Verrieres Les Buissons, France
来源
INFRARED SPACEBORNE REMOTE SENSING X | 2002年 / 4818卷
关键词
high-resolution; echelle; IR spectrometer; AOTF; atmosphere; solar occultation;
D O I
10.1117/12.451993
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
A compact high-resolution system consisting of an echelle spectrometer combined with an acousto-optic tunable filter (AOTF) for separation of diffraction orders is developed for space-borne studies of planetary atmospheres in the near IR range. This design allows to achieve a resolving power, lambda/Deltalambda, of 20000-30000 within the mass budget of less than 4-5 kg with no moving parts. Only a small part of spectrum in one of high diffraction orders can be measured at a time, but thanks to flexibility of the AOTF that can be tuned by electrical command to a random wavelength various pieces of spectrum can be measured anywhere within the spectral range. This development can be used for accurate measurements of important atmospheric gases, such as CO2 in terrestrial atmosphere, measurements of isotopic ratios and minor gases. An instrument based on this principle, has high potential for solar occultation sounding of the atmosphere of Venus and for the studies of the Earth, in particular for measurements of isotopes of water in the lower atmosphere, either in solar occultation profiling (tangent altitude <10 km), or observing solar glint for integral quantities of the components. Also, the atmosphere of Mars has never been observed at local scales with high spectral resolution. A functional laboratory model, consisting of 275-mm echelle spectrometer with Hamamatsu InGaAs 512-pixel linear array and AOTF, demonstrating the principle of the instrument, is discussed. The spectral range is 1-1.7 mum, and the. resolving power obtained at 1.39 mum is lambda/Deltalambda =30000. The next set up will cover the spectral range of 2.5-4.5 mum, which is more adequate for measurements of HDO and organic molecules.
引用
收藏
页码:272 / 281
页数:10
相关论文
共 16 条
[1]  
Abel I. R., 1979, Proceedings of the Society of Photo-Optical Instrumentation Engineers, V193, P12
[2]   DEUTERIUM ON VENUS - OBSERVATIONS FROM EARTH [J].
DEBERGH, C ;
BEZARD, B ;
OWEN, T ;
CRISP, D ;
MAILLARD, JP ;
LUTZ, BL .
SCIENCE, 1991, 251 (4993) :547-549
[3]   VIRTIS-H:: a high spectral resolution channel for the Rosetta Infrared Imaging Spectrometer [J].
Drossart, P ;
Sémery, A ;
Bouyé, M ;
Hello, Y ;
Huntzinger, G ;
Kouach, D ;
Reess, JM ;
Tiphene, D ;
Ghomchi, Y ;
Coradini, A ;
Capaccioni, F ;
Arnold, G ;
Benkhoff, J .
INFRARED SPACEBORNE REMOTE SENSING VIII, 2000, 4131 :78-87
[4]   MIPAS (Michelson Interferometer for Passive Atmospheric Sounding) - Design overview and current development status [J].
Endemann, M ;
Gare, P ;
Smith, DJ ;
Hoerning, K ;
Fladt, B ;
Gessner, R .
OPTICS IN ATMOSPHERIC PROPAGATION, ADAPTIVE SYSTEMS, AND LIDAR TECHNIQUES FOR REMOTE SENSING, 1997, 2956 :124-135
[5]   PFS: A Fourier spectrometer for the study of Martian atmosphere [J].
Formisano, V ;
Moroz, VI ;
Angrilli, F ;
Bianchini, G ;
Bussoletti, E ;
Cafaro, N ;
Capaccioni, F ;
Capria, MT ;
Cerroni, P ;
Chionchio, G ;
Colangeli, L ;
Coradini, A ;
DiLellis, A ;
Fonti, S ;
Orfei, R ;
Palomba, E ;
Piccioni, G ;
Saggin, B ;
Ekonomov, A ;
Grigoriev, A ;
Gnedykh, V ;
Khatuntsev, I ;
Kiselev, A ;
Matsygorin, I ;
Moshkin, B ;
Nechaev, V ;
Nikolsky, Y ;
Patsaev, D ;
Russakov, A ;
Titov, D ;
Zasova, L ;
Blecka, MI ;
Jurewicz, A ;
Michalska, M ;
Novosielski, W ;
Orleanski, P ;
Arnold, G ;
Hirsch, H ;
Driesher, H ;
LopezMoreno, J ;
Rodrigo, R ;
RodriguezGomez, J ;
Michel, G .
PLANETARY ATMOSPHERES AND IONOSPHERES AND REFERENCE ATMOSPHERES, 1997, 19 (08) :1277-1280
[6]  
GREENE TP, 1993, P SOC PHOTO-OPT INS, V1946, P313, DOI 10.1117/12.158684
[7]  
GUNSON MR, 1993, P SOC PHOTO-OPT INS, V1715, P513, DOI 10.1117/12.140203
[8]   MARINER 9 MICHELSON INTERFEROMETER [J].
HANEL, R ;
SCHLACHMAN, B ;
VANOUS, D ;
CHAPMAN, F ;
BYWATERS, R ;
BREIHAN, E ;
RHODES, M ;
RODGERS, D .
APPLIED OPTICS, 1972, 11 (11) :2625-+
[9]  
HANEL RA, 1981, P SOC PHOTO-OPT INST, V289, P331, DOI 10.1117/12.932205
[10]   High-resolution spectroscopy of Mars at 3.7 and 8 mu m: A sensitive search for H2O2, H2CO, HCl, and CH4, and detection of HDO [J].
Krasnopolsky, VA ;
Bjoraker, GL ;
Mumma, MJ ;
Jennings, DE .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 1997, 102 (E3) :6525-6534