科研成果

2018
Ye C. Tropospheric HONO distribution and chemistry in the southeastern US. Atmos. Chem. Phys. [Internet]. 2018;18:9107-9120. 访问链接Abstract
Here we report the measurement results of nitrous acid (HONO) and a suite of relevant parameters on the NCAR C-130 research aircraft in the southeastern US during the NOMADSS 2013 summer field study. The daytime HONO concentration ranged from low parts per trillion by volume (pptv) in the free troposphere (FT) to mostly within 5–15pptv in the background planetary boundary layer (PBL). There was no discernible vertical HONO gradient above the lower flight altitude of 300m in the PBL, and the transport of ground surface HONO was not found to be a significant contributor to the tropospheric HONO budget. The total in situ HONO source mean (±1SD) was calculated as 53 (±21)pptvh−1 during the day. The upper-limit contribution from NOx-related reactions was 10 (±5)pptvh−1, and the contribution from photolysis of particulate nitrate (pNO3) was 38 (±23)pptvh−1, based on the measured pNO3 concentrations and the median pNO3 photolysis rate constant of 2.0 × 10−4s−1 determined in the laboratory using ambient aerosol samples. The photolysis of HONO contributed to less than 10% of the primary OH source. However, a recycling NOx source via pNO3 photolysis was equivalent to  ∼ 2.3 × 10−6molm−2h−1 in the air column within the PBL, a considerable supplementary NOx source in the low-NOx background area. Up to several tens of parts per trillion by volume of HONO were observed in power plant and urban plumes during the day, mostly produced in situ from precursors including NOx and pNO3. Finally, there was no observable accumulation of HONO in the nocturnal residual layer and the nocturnal FT in the background southeastern US, with an increase in the HONO∕NOx ratio of  ≤ 3 × 10−4h−1 after sunset.
2017
Ye C, Heard DE, Whalley LK. Evaluation of Novel Routes for NO x Formation in Remote Regions. Environ. Sci. Technol. 2017;51:7442–7449.
Ye C, Zhang N, Gao H, Zhou X. Photolysis of Particulate Nitrate as a Source of HONO and NOx. Environ. Sci. Technol. . 2017;51:6849–6856.
Shang J, Xu WW, Ye CX, George C, Zhu T. Synergistic effect of nitrate-doped TiO2 aerosols on the fast photochemical oxidation of formaldehyde. Sci. Rep. . 2017;7:1-10.
2016
Z., Y., et al. Distribution and sources of air pollutants in the North China Plain based on on-road mobile measurements. Atmos. Chem. Phys. . 2016;16:12551–12565.
Li, Y., et al. Observation of regional air pollutant transport between the megacity Beijing and the North China Plain. Atmos. Chem. Phys. . 2016;16:14265–14283.
Ye C, Gao H, Zhang N, Zhou X. Photolysis of Nitric Acid and Nitrate on Natural and Artificial Surfaces. Environ. Sci. Technol. . 2016;50:3530–3536.
Ye C, et al. Rapid cycling of reactive nitrogen in the marine boundary layer. Nature. 2016; 532:489–491.
2011
张泽锋, 朱彤, 尚静, 赵德峰, 叶春翔. NO2在高岭石表面的非均相反应研究. 环境科学学报 . 2011:31.
2010
Ye C, et al. Heterogeneous reaction of NO2 with sea salt particles. Sci. China Chem. . 2010;53:2652–2656 .
2009
Zefeng Z, Tong Z. Heterogeneous Reaction of NO 2 on the Surface of Mineral Dust Particles. Prog. Chem. . 2009;21:282–287.
2007
Chunli K, Hongjie G, Ping G, Chunxiang Y, Tingting W. The optimization of the embedding conditions of the beads immobilized cell wall polysaccharides for the adsorption of plumbum and cadmium. Ecol. Environ. 2007;16:825–829.