Wang H T, Zhu D S, Wang W, et al. The impact of HS radicals on the measured rate constant of H2S with OH radicals[J]. Environmental Chemistry, 2010, 55(26):2951-2955.
[2]
Liao C H, Kang S F, Wu F A. Hydroxyl radical scavenging role of chlo-ride and bicarbonate ions in the H2O2/UV process[J]. Chemosphere, 2001, 44(5):1193-1200.
[3]
Xiang Q, Yu J, Wong P K. Quantitative characterization of hydroxyl rad-icals produced by various photocatalysts[J]. Journal of Colloid and Inter-face Science, 2011, 357(1):163-167.
[4]
Zhao D F, Kaminski M, Schlag P, et al. Secondary organic aerosol for-mation from hydroxyl radical oxidation and ozonolysis of monoterpenes[J]. Atmospheric Chemistry and Physics, 2015, 15(2):991-1012.
[5]
林云萍, 赵春生. 对流层大气氧化性研究进展[J]. 地球科学进展, 2009, 24(5):488-496. Lin Yunping, Zhao Chunsheng. The oxidation in the troposphere:A review[J]. Advances in Earth Science, 2009, 24(5):488-496.
[6]
Stuhl B K, Hummon M T, Yeo M, et al. Evaporative cooling of the dipo-lar hydroxyl radical[J]. Nature, 2012, 492(7429):396-400.
[7]
Wang C, Chen Z. Effect of CH3OOH on the atmospheric concentration of OH radicals[J]. Progress in Nature Science, 2006, 16(11):1141-1149.
[8]
Amedro D, Parker A E, Schoemaecker C, et al. Direct observation of OH radicals after 565nm multi-photon excitation of NO2 in the pres-ence of H2O[J]. Chemical Physics Letters, 2011, 513(1-3):12-16.
[9]
Prinn R G, Huang J, Weiss R F, et al. Evidence for substantial varia-tions of atmospheric hydroxyl radicals in the past two decades[J]. Sci-ence, 2001, 292(5523):1882-1888.
[10]
Rohrer F, Berresheim H. Strong correlation between levels of tropo-spheric hydroxyl radicals and solar ultraviolet radiation[J]. Nature, 2006, 442(7099):184-187.
[11]
Slade J H, Thalman R, Wang J, et al. Chemical aging of single and multicomponent biomass burning aerosol surrogate-particles by OH:Implications for cloud condensation nucleus activity[J]. Atmospheric Chemistry and Physics Discussions, 2015, 15(5):6771-6819.
[12]
Murray L T, Logan J A, Jacob D J. Interannual variability in tropical tropospheric ozone and OH:The role of lightning[J]. Journal of Geo-physical Research:Atmospheres, 2013, 118(19):11468-11480.
[13]
Reimann S, Manning A J, Simmonds P G, et al. Low European methyl chloroform emissions inferred from long-term atmospheric measure-ments[J]. Nature, 2005, 433(7025):506-508.
[14]
Lee J, Lane D A. Formation of oxidized products from the reaction of gaseous phenanthrene with the OH radical in a reaction chamber[J]. Atmospheric Environment, 2010, 44(20):2469-2477.
[15]
Su H, Cheng Y F, Oswald R, et al. Soil nitrite as a source of atmo-spheric HONO and OH radicals[J]. Science, 2011, 333(6049):1616-1618.
[16]
Andersson M E, Verronen P T, Wang S, et al. Precipitating radiation belt electrons and enhancements of mesospheric hydroxyl during 2004-2009[J]. Journal of Geophysical Research, 2012, 117(D9):9304-9306.
[17]
William S. Heaps T J M. Balloon borne LIDAR measurements of stratospheric hydroxyl radical[J]. Journal of Geophysical Research:Oceans (1978-2012), 1983, 88(C9):5281-5289.
[18]
Cheung R, Li K F, Wang S, et al. Atmospheric hydroxyl radical (OH) abundances from ground-based ultraviolet solar spectra:An improved retrieval method[J]. Applied Optics, 2008, 47(33):6277-6284.
[19]
Osterman G B, Salawitch R J, Sen B, et al. Balloon-borne measure-ments of stratospheric radicals and their precursors:Implications for the production and loss of ozone[J]. Geophysical Research Letters, 1997, 24(9):1107-1110.
[20]
Cageao R P, Blavier J F, McGuire J P, et al. High-resolution Fouriertransform ultraviolet-visible spectrometer for the measurement of at-mospheric trace species:Application to OH[J]. Optical Society of America, 2001, 40(12):2024-2030.
[21]
Conway R R, Summers M E, Stevens M H. Satellite observations of up-per stratospheric and mesospheric OH:The HOx dilemma[J]. Geophys-ical Research Letters, 2000, 27(17):2613-2616.
[22]
Ricaud P, De La No? J, Connor B J, et al. Diurnal variability of meso-spheric ozone as measured by the UARS microwave limb sounder in-strument:Theoretical and ground-based validations[J]. Journal of Geo-physical Research 1996, 101(D6):10077-10089.
[23]
Millán L, Wang S, Livesey N, et al. Stratospheric and mesospheric HO2 observations from the Aura Microwave Limb Sounder[J]. Atmo-spheric Chemistry and Physics, 2015, 15(5):2889-2902.
[24]
Stevens M H, Englert C R, Hervig M, et al. The diurnal variation of polar mesospheric cloud frequency near 55°N observed by SHIMMER[J]. Journal of Atmospheric and Solar-Terrestrial Physics, 2009, 71(3-4):401-407.
[25]
Bey I, Jacob D J, Yantosca R M, et al. Global modeling of tropospher-ic chemistry with assimilated meteorology:Model description and eval-uation[J]. Journal of Geophysical Research, 2001, 106(D19):23073-23095.
[26]
Siskind D E, Stevens M H, Englert C R, et al. Comparison of a photo-chemical model with observations of mesospheric hydroxyl and ozone[J]. Journal of Geophysical Research:Atmospheres, 2013, 118(1):195-207.
[27]
任信荣, 王会祥, 邵可声, 等. 北京市大气OH自由基测量结果及其 特征[J]. 环境科学, 2002, 23(4):24-27. Ren Xinrong, Wang Huixiang, Shao Kesheng, et al. Determination and characteristics of OH radical in urban atmosphere in Beijing[J]. Environmental Science, 2002, 23(4):24-27.
[28]
任信荣, 邵可声, 缪国芳, 等. 大气OH自由基浓度的测定[J]. 中国环 境科学, 2001, 21(2):20-23. Ren Xinrong, Shao Kesheng, Miao Guofang, et al. Determination of hy-droxyl radical concentration in atmosphere[J]. China Environmental Science, 2001, 21(2):20-23.
[29]
刘宇, 刘文清, 阚瑞峰, 等. 超高分辨差分吸收光谱技术测量火焰中 OH自由基[J]. 光谱学与光谱分析, 2011, 31(10):2659-2663. Liu Yu, Liu Wenqing, Kan Ruifeng, et al. Measurement of OH radi?cals in flame with high resolution differential optical absorption spec-troscopy[J]. Spectroscopy and Spectral Analysis, 2011, 31(10):2659-2663.
[30]
Dusanter S, Vimal D, Stevens P S. Technical note:Measuring tropo-spheric OH and HO2 by laser-induced fluorescence at low pressure. A comparison of calibration techniques[J]. Atmospheric Chemistry and Physics, 2008, 8(2):321-340.
[31]
张兴赢, 张鹏, 方宗义, 等. 应用卫星遥感技术监测大气痕量气体的 研究进展[J]. 气象, 2007(7):3-14. Zhang Xingying, Zhang Peng, Fang Zongyi, et al. The progress in trace gas remote sensing study based on the satellite monitoring[J]. Me-teorological Monthly, 2007(7):3-14.
[32]
Mahajan A S, Whalley L K, Kozlova E, et al. DOAS observations of formaldehyde and its impact on the HOx balance in the tropical Atlan-tic marine boundary layer[J]. Journal of Atmospheric Chemistry, 2010, 66(3):167-178.
[33]
Greg K, George L, Gary R. The total irradiance monitor (TIM):Sci-ence results[J]. Solar Physics, 2005, 2005(230):129-139.
[34]
Jackman C H, Randall C E, Harvey V L, et al. Middle atmospheric changes caused by the January and March 2012 solar proton events[J]. Atmospheric Chemistry and Physics, 2014, 14(2):1025-1038.
[35]
Damiani A, Storini M, Rafanelli C, et al. The hydroxyl radical as an in-dicator of SEP fluxes in the high-latitude terrestrial atmosphere[J]. Ad-vances in Space Research, 2010, 46(9):1225-1235.
[36]
寿绍文, 唐东昇, 朱乾根, 等. 天气学原理和方法[M]. 北京:气象出版 社, 2010:152-153. Shou Shaowen, Tang Dongsheng, Zhu Qiangen, et al. The principles and methods of weather science[M]. Beijing:China Meteorological Press, 2010:152-153.
[37]
杨军. 气象卫星及其应用(上)[M]. 北京:气象出版社, 2012:21-22. Yang Jun. Meteorological satellites and their applications (I) [M]. Beijing:China Meteorological Press, 2012:21-22.
[38]
Minschwaner K, Manney G L, Wang S H, et al. Hydroxyl in the stratosphere and mesosphere-Part 1:Diurnal variability[J]. Atmospheric Chemistry and Physics, 2011, 11(3):955-962.