Development study of THz instruments for atmospheric sounding

被引:1
|
作者
Gao T. [1 ]
Li S. [1 ]
Liu L. [1 ]
Huang W. [1 ]
机构
[1] Institute of Meteorology and Oceanography, PLA University of Science and Technology, Nanjing
来源
Hongwai yu Jiguang Gongcheng/Infrared and Laser Engineering | 2016年 / 45卷 / 04期
关键词
Atmospheric sounding; Direct detection; Heterodyne receiver; THz technology;
D O I
10.3788/IRLA201645.0425002
中图分类号
学科分类号
摘要
THz wave lies in the region between the microwave and infrared range in the electromagnetic spectrum. There are unique advantages for THz wave in the space research and application field. THz remote sensing instruments can provide a new perspective for the exploration of the earth's atmosphere. As a result, THz technology has a good prospection the field of atmospheric science. The main applications of THz technology in the field of atmospheric sounding were introduced. The current research status of THz atmospheric observation instruments at home and abroad were summarized. By comparison and analysis of key parameters of each instrument, the development trend and the development prospect of THz instruments for atmospheric observation were summarized. Meanwhile, the suggestions for developing THz atmospheric remote sensing technology were presented. © 2016, Editorial Board of Journal of Infrared and Laser Engineering. All right reserved.
引用
收藏
页数:12
相关论文
共 71 条
  • [41] Urban J., Lautie N., Le Flochmoez E., Et al., Odin/SMR limb observations of stratospheric trace gases: Validation of N<sub>2</sub>O, Journal of Geophysical Research, 110, pp. D09301-D09320, (2005)
  • [42] Schoeberl M.R., Douglass A.R., Hilsenrath E., Et al., Overview of the EOS Aura mission, IEEE Transactions on Geoscience and Remote Sensing, 44, 5, pp. 1066-1074, (2006)
  • [43] Krotkov N.A., McLinden C.A., Li C., Et al., Aura OMI observations of regional SO2 and NO2 pollution changes from 2005 to 2014, Atmos Chem Phys Discuss, 15, pp. 26555-26607, (2015)
  • [44] Pickett H.M., Microwave limb sounder THz module on Aura, IEEE Transactions on Geoscience and Remote Sensing, 44, 5, pp. 1122-1130, (2006)
  • [45] Gaidis M.C., Pickett H.M., Smith C.D., Et al., A 2.5 THz receiver front-end for spaceborne applications, IEEE Transactions on Microwave Theory Techniques, MTT-48, 4, pp. 733-739, (2000)
  • [46] Inatani J., Ozeki H., Satoh R., Et al., Submillimeter limb-emission sounder JEM/SMILES aboard the Space Station, Microwave Remote Sensing of the Atmosphere and Environment II, 4152, (2000)
  • [47] Seta M., Masuko H., Manabe T., Et al., Submillimeter-wave SIS receiver for JEM/SMILES, Adv Space Res, 26, 6, pp. 1021-1024, (2000)
  • [48] Sagawa H., Sato T.O., Baron P., Et al., Comparison of SMILES ClO profiles with satellite, balloon-borneand ground-based measurements, Atmos Meas Tech, 6, pp. 3325-3347, (2013)
  • [49] Fujii Y., Kikuchi K., Inatani J., Et al., Space-borne 640-GHz receiver based on 4-K mechanicalcooler, Astronomical Telescopes and Instrumentation, 4013, pp. 90-99, (2000)
  • [50] Perrin A., Puzzarini C., Colmont J.M., Et al., Molecular line parameters for the "MASTER" (Millimeter Wave Acquisitions for Stratosphere/Troposphere Exchange Research) database, Journal of Atmospheric Chemistry, 51, 2, pp. 161-205, (2005)