白瑶, 吴志军, 刘玥晨, 王玉珏, 郭松, 胡敏.
PM2.5中类腐殖质表面活性测定方法与实例分析. 中国环境科学中国环境科学. 2019;39:3137-3143.
Zamora ML, Peng J, Hu M, Guo S, Marrero-Ortiz W, Shang D, Zheng J, Du Z, Wu Z, Zhang R.
Wintertime aerosol properties in Beijing. Atmos. Chem. Phys.Atmos. Chem. Phys. 2019;19:14329-14338.
徐伟召, 朱雯斐, 王甜甜, 楼晟荣, 黄晓锋, 郭松.
冬季德州市大气颗粒物消光与化学组成关系研究. Acta Scientiae CircumstantiaeActa Scientiae Circumstantiae. 2019;39:1057-1065.
唐荣志, 王辉, 刘莹, 郭松.
大气半/ 中等挥发性有机物的组成及其对有机气溶胶贡. 化学进展化学进展. 2019;31:180-190.
Zhao G, Tan T, Zhao W, Guo S, Tian P, Zhao C.
A new parameterization scheme of the real part of the ambient aerosols refractive index. Atmos. Chem. Phys. Discuss.Atmos. Chem. Phys. Discuss. 2019;2019:1-20.
Wang T, Du Z, Tan T, Xu N, Hu M, Hu J, Guo S.
Measurement of aerosol optical properties and their potential source origin in urban Beijing from 2013-2017. Atmospheric EnvironmentAtmospheric Environment. 2019;206:293-302.
Lu K, Guo S, Tan Z, Wang H, Shang D, Liu Y, Li X, Wu Z, Hu M, Zhang Y.
Exploring atmospheric free-radical chemistry in China: The self-cleansing capacity and the formation of secondary air pollution. National Science ReviewNational Science Review. 2019;6:579-594.
Zamora ML, Peng J, Hu M, Guo S, Marrero-Ortiz W, Shang D, Zheng J, Du Z, Wu Z, Zhang R.
Measurement of aerosol properties during wintertime in Beijing. Atmos. Chem. Phys. Discuss. 2019;2019:1-15.
Wang Y, Hu M, Wang Y, Zheng J, Shang D, Yang Y, Liu Y, Li X, Tang R, Zhu W, et al. The formation of nitro-aromatic compounds under high NOx-anthropogenic VOCs dominated atmosphere in summer in Beijing, China. Atmos. Chem. Phys. Discuss. 2019;2019:1-22.
Marrero-Ortiz W, Hu M, Du ZF, Ji YM, Wang YJ, Guo S, Lin Y, Gomez-Hermandez M, Peng JF, Li YX, et al. Formation and Optical Properties of Brown Carbon from Small alpha-Dicarbonyls and Amines. Environmental Science & Technology. 2019;53:117-126.
AbstractBrown Carbon (BrC) aerosols scatter and absorb solar radiation, directly affecting the Earth's radiative budget. However, considerable uncertainty exists concerning the chemical mechanism leading to BrC formation and their optical properties. In this work, BrC particles were prepared from mixtures of small alpha-dicarbonyls (glyoxal and methylglyoxal) and amines (methylamine, dimethylamine, and trimethylamine). The absorption and scattering of BrC particles were measured using a photoacoustic extinctometer (405 and 532 nm), and the chemical composition of the alpha-dicarbonyl-amine mixtures was analyzed using orbitrap-mass spectrometry and thermal desorption-ion drift-chemical ionization mass spectrometry. The single scattering albedo for methylglyoxal-amine mixtures is smaller than that of glyoxal-amine mixtures and increases with the methyl substitution of amines. The mass absorption cross-section for methylglyoxal-amine mixtures is two times higher at 405 nm wavelength than that at 532 nm wavelength. The derived refractive indexes at the 405 nm wavelength are 1.40-1.64 for the real part and 0.002-0.195 for the imaginary part. Composition analysis in the alpha-dicarbonyl-amine mixtures reveals N-heterocycles as the dominant products, which are formed via multiple steps involving nucleophilic attack, steric hindrance, and dipole dipole interaction between alpha-dicarbonyls and amines. BrC aerosols, if formed from the particle-phase reaction of methylglyoxal with methylamine, likely contribute to atmospheric warming.