• Journal of Atmospheric and Environmental Optics
  • Vol. 20, Issue 1, 47 (2025)
YANG Kunpeng1,*, LIU Haoran1,2, XING Chengzhi3, SU Wenjing4..., HONG Qianqian5, LI Qihua1, JI Xiangguang2 and LIU Cheng3,6|Show fewer author(s)
Author Affiliations
  • 1Institutes of Physical Science and Information Technology, Anhui University, Hefei 230601, China
  • 2Information Materials and Intelligent Sensing Laboratory of Anhui Province, Anhui University, Hefei 230601, China
  • 3Key Laboratory of Environmental Optics and Technology, Anhui Institute of Optics and Fine Mechanics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China
  • 4Department of Environmental Science and Engineering, University of Science and Technology of China, Hefei 230026, China
  • 5School of Atmosphere and Remote Sensing, Wuxi University, Wuxi 214105, China
  • 6Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei 230026, China
  • show less
    DOI: 10.3969/j.issn.1673-6141.2025.01.004 Cite this Article
    Kunpeng YANG, Haoran LIU, Chengzhi XING, Wenjing SU, Qianqian HONG, Qihua LI, Xiangguang JI, Cheng LIU. Analysis of tropospheric ozone characterization in Pearl River Delta region based on TROPOMI[J]. Journal of Atmospheric and Environmental Optics, 2025, 20(1): 47 Copy Citation Text show less
    References

    [1] G Q Tang, X W Zhu, J Y Xin et al. Modelling study of boundary-layer ozone over Northern China―Part I: Ozone budget in summer. Atmospheric Research, 187, 128-137(2017).

    [2] G Q Tang, X W Zhu, J Y Xin et al. Modelling study of boundary-layer ozone over Northern China―Part II: Responses to emission reductions during the Beijing Olympics. Atmospheric Research, 193, 83-93(2017).

    [3] C F Rider, C Carlsten. Air pollution and DNA methylation: Effects of exposure in humans. Clinical Epigenetics, 11, 131(2019).

    [4] R Canella, R Borriello, C Cavicchio et al. Tropospheric ozone effects on chlorine current in lung epithelial cells: An electrophysiological approach. Free Radical Biology and Medicine, 96, S58-S59(2016).

    [5] H M Worden, K W Bowman, J R Worden et al. Satellite measurements of the clear-sky greenhouse effect from tropospheric ozone. Nature Geoscience, 1, 305-308(2008).

    [6] S Avnery, D L Mauzerall, J F Liu et al. Global crop yield reductions due to surface ozone exposure: 1. Year 2000 crop production losses and economic damage. Atmospheric Environment, 45, 2284-2296(2011).

    [7] M Q Jiang, K D Lu, R Su et al. Ozone formation and key VOCs in typical Chinese city clusters. Chinese Science Bulletin, 63, 1130-1141(2018).

    [8] A J Haagen-Smit. Chemistry and physiology of los angeles smog. Industrial & Engineering Chemistry, 44, 1342-1346(1952).

    [9] J Xing, S X Wang, C Jang et al. Nonlinear response of ozone to precursor emission changes in China: A modeling study using response surface methodology. Atmospheric Chemistry and Physics, 11, 5027-5044(2011).

    [10] K Li, D J Jacob, L Shen et al. Increases in surface ozone pollution in China from 2013 to 2019: Anthropogenic and meteorological influences. Atmospheric Chemistry & Physics, 20, 11423-11433(2020).

    [11] C Y Zhou, Z Fu, P F Ma et al. Spatio-temporal change of tropospheric NO2 column density over Pearl River Delta from 2005 to 2015. Environment and Sustainable Development, 41, 33-36(2016).

    [12] I Tadic, J N Crowley, D Dienhart et al. Net ozone production and its relationship to nitrogen oxides and volatile organic compounds in the marine boundary layer around the Arabian Peninsula. Atmospheric Chemistry and Physics, 20, 6769-6787(2020).

    [13] W N Wang, A R van der, J Y Ding et al. Spatial and temporal changes of the ozone sensitivity in China based on satellite and ground-based observations. Atmospheric Chemistry and Physics, 21, 7253-7269(2021).

    [14] J W Liu, X Li, Z F Tan et al. Assessing the ratios of formaldehyde and glyoxal to NO2 as indicators of O3-NOx-VOC sensitivity. Environmental Science & Technology, 55, 10935-10945(2021).

    [15] Q Q Hong, C Liu, Q H Hu et al. Vertical distribution and temporal evolution of formaldehyde and glyoxal derived from MAX-DOAS observations: The indicative role of VOC sources. Journal of Environmental Sciences (China), 122, 92-104(2022).

    [16] B N Duncan, Y Yoshida, J R Olson et al. Application of OMI observations to a space-based indicator of NOx and VOC controls on surface ozone formation. Atmospheric Environment, 44, 2213-2223(2010).

    [17] S H Zhao, X Y Yang, Z Q Li et al. Advances of ozone satellite remote sensing in 60 years. National Remote Sensing Bulletin, 26, 817-833(2022).

    [18] X H Wang, Y Z Xu, C X Zhang et al. Spatial-temporal variation of tropospheric NO2 concentration in Pearl River Delta based on EMI observations. Journal of Atmospheric and Environmental Optics, 16, 197-206(2021).

    [20] R Zhao, Q H Hu, Z P Sun et al. Review of space and ground integrated remote sensing for air pollutants. Research of Environmental Sciences, 34, 28-40(2021).

    [21] C X Zhang, C Liu, Q H Hu et al. Satellite UV-Vis spectroscopy: Implications for air quality trends and their driving forces in China during 2005–2017. Light: Science & Applications, 8, 100(2019).

    [22] W J Su, C Liu, K L Chan et al. An improved TROPOMI tropospheric HCHO retrieval over China. Atmospheric Measurement Techniques, 13, 6271-6292(2020).

    [23] F Zhao, C Liu, Z N Cai et al. Ozone profile retrievals from TROPOMI: Implication for the variation of tropospheric ozone during the outbreak of COVID-19 in China. The Science of the Total Environment, 764, 142886(2021).

    [24] C Liu, C Z Xing, Q H Hu et al. Ground-based hyperspectral stereoscopic remote sensing network: A promising strategy to learn coordinated control of O3 and PM2.5 over China. Engineering, 19, 71-83(2022).

    [25] J C Witte, B N Duncan, A R Douglass et al. The unique OMI HCHO/NO2 feature during the 2008 Beijing Olympics: Implications for ozone production sensitivity. Atmospheric Environment, 45, 3103-3111(2011).

    [26] H R Liu, C Liu, Z Q Xie et al. A paradox for air pollution controlling in China revealed by "APEC Blue" and "Parade Blue". Scientific Reports, 6, 34408(2016).

    [27] X C Li, P Gong, Y Y Zhou et al. Mapping global urban boundaries from the global artificial impervious area (GAIA) data. Environmental Research Letters, 15, 094044(2020).

    [28] B Zheng, D Tong, M Li et al. Trends in China's anthropogenic emissions since 2010 as the consequence of clean air actions. Atmospheric Chemistry and Physics, 18, 14095-14111(2018).

    [29] Z J Huang, Z M Zhong, Q G Sha et al. An updated model-ready emission inventory for Guangdong Province by incorporating big data and mapping onto multiple chemical mechanisms. The Science of the Total Environment, 769, 144535(2021).

    [30] H Chen, X S Wang, J Shen et al. Ozone source apportionment of typical photochemical pollution episodes in the Pearl River Delta in autumn. Acta Scientiarum Naturalium Universitatis Pekinensis, 51, 620-630(2015).

    [31] L L Liu, C L Nie, M Zhang et al. Effects of land-sea breeze on autumn and winter pollution in some coastal areas of Guangdong Province. Journal of Chengdu University of Information Technology, 36, 316-322(2021).

    [32] R Y Zhang, W F Lei, X X Tie et al. Industrial emissions cause extreme urban ozone diurnal variability. Proceedings of the National Academy of Sciences of the United States of America, 101, 6346-6350(2004).

    [33] B L Liang, L Zhang, X Lai et al. Analysis of the characteristics of ozone pollution and its relationship with meteorological conditions in Shenzhen. Journal of Meteorology and Environment, 33, 66-71(2017).

    [34] S Sillman, J A Logan, S C Wofsy. The sensitivity of ozone to nitrogen oxides and hydrocarbons in regional ozone episodes. Journal of Geophysical Research: Atmospheres, 95, 1837-1851(1990).

    Kunpeng YANG, Haoran LIU, Chengzhi XING, Wenjing SU, Qianqian HONG, Qihua LI, Xiangguang JI, Cheng LIU. Analysis of tropospheric ozone characterization in Pearl River Delta region based on TROPOMI[J]. Journal of Atmospheric and Environmental Optics, 2025, 20(1): 47
    Download Citation