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基于红光二极管为光源的LP-DOAS系统监测大气NO_3自由基的研究 被引量:2

Measurement of Atmospheric NO_3 Radical with Long Path Differential Optical Absorption Spectroscopy Based on Red Light Emitting Diodes
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摘要 NO3自由基是夜间大气中最重要的氧化基团,鉴于NO3自由基易变性以及极低的大气浓度,开发了以发红光二极管(LEDs)为光源来监测大气NO3自由基的长程差分吸收光谱系统(LEDs-DOAS)。分析了新型红光二极管Luxeon LXHL-MD1DLEDs的谱特性,研究了以其为光源的长程LEDs-DOAS系统测量大气NO3自由基的原理,设计了大气NO3测量自由基的装置,给出监测的大气吸收光谱,研究了反演NO3的方法,并给出反演谱图和一周大气NO3浓度的时间序列图。研究结果表明当光程为2.8km时,LEDs-DOAS系统的探测限大约为12ppt。 Nitrate radical (NO3) is the most important oxidant in the tropospheric nighttime chemistry. Due to its high reactivity and low atmospheric concentrations, modem red light emitting diodes (LEDs) was proposed as light source in long path differen- tial optical absorption spectroscopy (LP-DOAS) to measure NO3 radical in the atmosphere. The spectral properties of Luxeon LXHL-MD1D LEDs were analyzed in the present paper. The principle of LEDs-DOAS system to measure nitrate radical was studied in this paper. The experimental setup and retrieval method of NO3 radical were discussed in this paper. The retrieved ex- ample of NO3 was given and the time series of NO3 concentrations was performed for a week. The results showed that the detec-tion limits of LEDs-DOAS system were 12 ppt for atmospheric NO3 radical when the optical path of LEDs-DOAS system was 2. 8 km.
出处 《光谱学与光谱分析》 SCIE EI CAS CSCD 北大核心 2013年第2期444-447,共4页 Spectroscopy and Spectral Analysis
基金 国家自然科学基金项目(41275027 61203272) 安徽省自然科学基金项目(1208085MF103) 安徽高校省级自然科学研究重大项目(KJ2012ZD06)资助
关键词 红光二极管 大气NO3自由基 长程差分吸收光谱系统 Red light emitting diodes Nitrate radical Long path differential optical absorption spectroscopy system
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  • 1司福祺,刘建国,谢品华,张玉钧,窦科,刘文清.差分吸收光谱技术监测大气气溶胶粒谱分布[J].物理学报,2006,55(6):3165-3169. 被引量:17
  • 2S. W. Li, W. Q. Liu, P. H. Xie, A. Li, M. Qin, F. M. Peng, and Y. W. Zhu, J. Environ. Sci. 20, 45 (2008). 被引量:1
  • 3J. F. Noxon, R. B. Norton, and E. Marovich, Geophys. P~es. Lett. 7, 125 (1980). 被引量:1
  • 4U. Platt, D. Perner, G. W. Harris, A. M. Winer, and J. M. Pitts, Geophys. Res. Lett. 7, 89 (1980). 被引量:1
  • 5M. Wincr, R. Atkinson, and J. N. Pitts, Science 224, 156 (1984). 被引量:1
  • 6A. Geyer, Ph. D. Dissertation, Heidelberg: Institute of Environmental Physics, University of Heidelberg (2000). 被引量:1
  • 7S. S. Brown, J. A. Neuman, T. B. Ryerson, M. Trainer, W. P. Dub6, J. S. Holloway, and C. Warneke, Geophys. Res. Lett. 33, LO8801 (2006). 被引量:1
  • 8B. J. Allan, N. Carslaw, H. Coe, R. A. Burgess, and J. M. C. Plane, J. Atmos. Chem. 33, 129 (1999). 被引量:1
  • 9J. Stutz, B. Alicke, and R. Ackermann, J. Geophys. Res. 109, D12306 (2004). 被引量:1
  • 10E. C. Wood, P. J. Wooldridge, J. H. Freese, T. Al- brecht, and R. C. Cohen, Environ. Sci. Technol. 37, 5732 (2003). 被引量:1

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