Infrared detectors characterization for CO2 DIAL measurement

被引:7
|
作者
Refaat, TF [1 ]
Abedin, MN [1 ]
Koch, GJ [1 ]
Ismail, S [1 ]
Singh, UN [1 ]
机构
[1] Sci & Technol Corp, Hampton, VA 23666 USA
关键词
atmospheric CO2; DIAL measurements; IR detectors; detector characterization;
D O I
10.1117/12.504893
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Knowledge of the spatial and temporal distribution of atmospheric carbon dioxide (CO2) is important for understanding the carbon natural cycle, predicting its future levels and its impact on global warming and climate changes. Laser technology has advanced considerably during the past few years in the 2-micron region where strong optimum lines are available for measuring CO2 Using the Differential Absorption Lidar (DIAL) technique. Although several types of detectors might be suitable for this particular wavelength, an ideal device would have high gain, low noise and narrow spectral response peaking around the wavelength of interest. This increases the signal-to-noise ratio and minimizes the background signal, thereby increasing the instrument sensitivity and dynamic range. In this paper the detector requirements for a long range CO2 DIAL measurement will be presented. The requirements were compared to commercially available and newly developed infrared (IR) detectors. The IR detectors considered for this study consist of the well developed InGaAs and HgCdTe p-n junction photodiodes, beside the newly developed and proposed InGaAsSb and InGaSb detectors. All of the detectors were characterized and their performances were compared with the CO2 DIAL detector requirements. The characterization experiments included spectral response, dark current and noise measurements. CO2 DIAL, measurements using InGaAs detectors were attempted and indicated the need for better detector performance. While InGaAs detectors showed the closest performance to the instrument requirements, InGaSb detectors indicated a promising solution.
引用
下载
收藏
页码:65 / 73
页数:9
相关论文
共 50 条
  • [31] CO2 DIAL FOR MONITORING ATMOSPHERIC POLLUTANTS AT THE UNIVERSITY-OF-CALABRIA
    BELLECCI, C
    CAPUTI, GEML
    DEDONATO, F
    GAUDIO, P
    VALENTINI, M
    NUOVO CIMENTO DELLA SOCIETA ITALIANA DI FISICA C-GEOPHYSICS AND SPACE PHYSICS, 1995, 18 (05): : 463 - 472
  • [32] New double wavelength CO2 laser source for DIAL measurements
    Barbini, R
    Colao, F
    dAuria, G
    Palucci, A
    Ribezzo, S
    LIDAR ATMOSPHERIC MONITORING, 1997, 3104 : 167 - 172
  • [33] CO2 laser setup for long-range DIAL lidar
    Karapuzikov, AI
    Sherstov, IV
    Malov, AN
    Ivachenko, MV
    13TH SYMPOSIUM AND SCHOOL ON HIGH-RESOLUTION MOLECULAR SPECTROSCOPY, 2000, 4063 : 255 - 259
  • [34] Simulation of heterodyne DIAL performance for atmospheric CO2 concentration measurements
    Gibert, F
    Flamant, PH
    Loth, C
    Bruneau, D
    SIXTH INTERNATIONAL SYMPOSIUM ON TROPOSPHERIC PROFILING: NEEDS AND TECHNOLOGIES, 2003, : 249 - 251
  • [35] MEASUREMENTS OF THE URBAN OZONE VERTICAL PROFILE WITH AN AIRBORNE CO2 DIAL
    ITABE, T
    ASAI, K
    ISHIZU, M
    ARUGA, T
    IGARASHI, T
    APPLIED OPTICS, 1989, 28 (05): : 931 - 934
  • [36] AN IMPROVED RETRIEVING METHOD OF VERTICAL CO2 CONCENTRATIONS PROFILE FOR DIAL
    Han, Ge
    Gong, Wei
    Yan, Fa
    Liang, Ailin
    Lin, Hong
    2014 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM (IGARSS), 2014,
  • [37] Measurement of CO2 in the Atmosphere
    Bolf, N.
    KEMIJA U INDUSTRIJI-JOURNAL OF CHEMISTS AND CHEMICAL ENGINEERS, 2019, 68 (5-6): : 266 - 266
  • [38] ATMOSPHERE CONTROL BY INFRARED CO2
    HUGHES, RL
    METALS ENGINEERING QUARTERLY, 1971, 11 (02): : 1 - &
  • [39] Infrared CO2 gas sensor
    Jiang, Tao
    Hongwai/Infrared, 1992, (02): : 20 - 24
  • [40] MEASUREMENT OF CO2 RESPONSE BY ADMINISTRATION OF SMALL CO2 PULSES
    JACOBI, MS
    PATIL, CP
    HORMBREY, JM
    SAUNDERS, KB
    CLINICAL SCIENCE, 1986, 71 : P8 - P8