The Impact of the Control Measures during the COVID-19 Outbreak on Air Pollution in China
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Jie Guang | Zhengqiang Li | Cheng Fan | Ying Li | Gerrit de Leeuw | Abdelrazek Elnashar | Zhengqiang Li | Mona Allam | Gerrit de Leeuw | Cheng Fan | G. Leeuw | J. Guang | Yingjie Li | Zhengqiang Li | Abdelrazek Elnashar | M. Allam | C. Fan | Mona Allam | Ying Li
[1] V. Salomonson,et al. Moderate Resolution Imaging Spectrometer A Progress Report (april 1989) , 1989, 12th Canadian Symposium on Remote Sensing Geoscience and Remote Sensing Symposium,.
[2] G. Simmons,et al. Characterization of severe acute respiratory syndrome-associated coronavirus (SARS-CoV) spike glycoprotein-mediated viral entry , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[3] Yujie Wang,et al. Multiangle implementation of atmospheric correction (MAIAC): 2. Aerosol algorithm , 2011 .
[4] Yuan Cheng,et al. The impact of the pollution control measures for the 2008 Beijing Olympic Games on the chemical composition of aerosols , 2011 .
[5] S. V. Gasselt,et al. Map-projection-independent crater size-frequency determination in GIS environments—New software tool for ArcGIS , 2011 .
[6] Jie Zhang,et al. CO emissions in China: Uncertainties and implications of improved energy efficiency and emission control , 2012 .
[7] Henk Eskes,et al. TROPOMI on the ESA Sentinel-5 Precursor: A GMES mission for global observations of the atmospheric composition for climate, air quality and ozone layer applications , 2012 .
[8] Jun Tao,et al. Characteristics of fine particulate non-polar organic compounds in Guangzhou during the 16th Asian Games: Effectiveness of air pollution controls , 2013 .
[9] Christian Drosten,et al. Commentary: Middle East Respiratory Syndrome Coronavirus (MERS-CoV): Announcement of the Coronavirus Study Group , 2013, Journal of Virology.
[10] G. Mills,et al. Tropospheric ozone and its precursors from the urban to the global scale from air quality to short-lived climate forcer , 2014 .
[11] P. F. Levelt,et al. NOx emission estimates during the 2014 Youth Olympic Games in Nanjing (discussion paper) , 2014 .
[12] Huizheng Che,et al. Spatial and temporal variations of the concentrations of PM 10 , PM 2.5 and PM 1 in China , 2015 .
[13] Qi Zhang,et al. Characteristics and sources of submicron aerosols above the urban canopy (260 m) in Beijing, China, during the 2014 APEC summit , 2015 .
[14] Zhengqiang Li,et al. Remote sensing of atmospheric fine particulate matter (PM2.5) mass concentration near the ground from satellite observation , 2015 .
[15] K. Moffett,et al. Remote Sens , 2015 .
[16] David G. Streets,et al. Aura OMI observations of regional SO2 and NO2 pollution changes from 2005 to 2015 , 2015 .
[17] P. Levelt,et al. NO x emission estimates during the 2014 Youth Olympic Games in Nanjing , 2015 .
[18] Isabelle De Smedt,et al. Sulfur dioxide retrievals from TROPOMI onboard Sentinel-5 Precursor: algorithm theoretical basis , 2016 .
[19] Kui Chen,et al. Characteristics of air quality in Tianjin during the Spring Festival period of 2015 , 2016 .
[20] Tao Song,et al. The observation‐based relationships between PM2.5 and AOD over China , 2016 .
[21] Chen Chen,et al. Insights into aerosol chemistry during the 2015 China Victory Day parade: results from simultaneous measurements at ground level and 260 m in Beijing , 2016 .
[22] P. Levelt,et al. Space-based NO x emission estimates over remote regions improved in DECSO , 2016 .
[23] Nicolas Theys,et al. Cleaning up the air: effectiveness of air quality policy for SO 2 and NO x emissions in China , 2016 .
[24] Yi Li,et al. Chemical composition and source apportionment of PM 2.5 during Chinese Spring Festival at Xinxiang, a heavily polluted city in North China: Fireworks and health risks , 2016 .
[25] Eleni Marinou,et al. Nine-year spatial and temporal evolution of desert dust aerosols over South and East Asia as revealed by CALIOP , 2017 .
[26] Michael Dixon,et al. Google Earth Engine: Planetary-scale geospatial analysis for everyone , 2017 .
[27] Hong Liao,et al. Weather conditions conducive to Beijing severe haze more frequent under climate change , 2017 .
[28] Zhanqing Li,et al. Aerosol and boundary-layer interactions and impact on air quality , 2017 .
[29] Tânia Fontes,et al. Trends of PM2.5 concentrations in China: A long term approach. , 2017, Journal of environmental management.
[30] Lin Su,et al. Ground-Level NO2 Concentrations over China Inferred from the Satellite OMI and CMAQ Model Simulations , 2017, Remote. Sens..
[31] Xiao-Feng Huang,et al. Differentiating local and regional sources of Chinese urban air pollution based on the effect of the Spring Festival , 2017 .
[32] Cheng Liu,et al. Feedback effects of boundary-layer meteorological factors on cumulative explosive growth of PM 2.5 during winter heavy pollution episodes in Beijing from 2013 to 2016 , 2017 .
[33] Qiang Zhang,et al. Enhancement of PM2.5 Concentrations by Aerosol‐Meteorology Interactions Over China , 2017 .
[34] Gerrit de Leeuw,et al. Spatial and seasonal variations of aerosols over China from two decades of multi-satellite observations – Part 2: AOD time series for 1995–2017 combined from ATSR ADV and MODIS C6.1 and AOD tendency estimations , 2018, Atmospheric Chemistry and Physics.
[35] Yong Xue,et al. Two decades of satellite observations of AOD over mainland China using ATSR-2, AATSR and MODIS/Terra: data set evaluation and large-scale patterns , 2018 .
[36] Jun He,et al. Characteristics of PM2.5 mass concentrations and chemical species in urban and background areas of China: emerging results from the CARE-China network , 2018, Atmospheric Chemistry and Physics.
[37] Qingyang Xiao,et al. MAIAC-based long-term spatiotemporal trends of PM2.5 in Beijing, China. , 2018, The Science of the total environment.
[38] Bo Hu,et al. Characteristics of PM2.5 mass concentrations and chemical species in urban and background areas of China: emerging results from the CARE-China network , 2018, Atmospheric Chemistry and Physics.
[39] Ziwei Shang,et al. Characteristics of air pollution in different zones of Sichuan Basin, China. , 2018, The Science of the total environment.
[40] Yong Xue,et al. Spatial and seasonal variations of aerosols over China from two decades of multi-satellite observations – Part 1: ATSR (1995–2011) and MODIS C6.1 (2000–2017) , 2018, Atmospheric Chemistry and Physics.
[41] Alexei Lyapustin,et al. MODIS Collection 6 MAIAC algorithm , 2018, Atmospheric Measurement Techniques.
[42] Ying Li,et al. Ground-Level PM2.5 Concentration Estimation from Satellite Data in the Beijing Area Using a Specific Particle Swarm Extinction Mass Conversion Algorithm , 2018, Remote. Sens..
[43] Dominick V. Spracklen,et al. Substantial changes in air pollution across China during 2015–2017 , 2018, Environmental Research Letters.
[44] Sarmiza Pencea,et al. China , 2019, The Statesman’s Yearbook 2019.
[45] Xingfeng Chen,et al. Estimating Spatio-Temporal Variations of PM2.5 Concentrations Using VIIRS-Derived AOD in the Guanzhong Basin, China , 2019, Remote. Sens..
[46] Alexei Lyapustin,et al. Comparison and evaluation of MODIS Multi-angle Implementation of Atmospheric Correction (MAIAC) aerosol product over South Asia , 2019, Remote Sensing of Environment.
[47] Kei Shiomi,et al. A scientific algorithm to simultaneously retrieve carbon monoxide and methane from TROPOMI onboard Sentinel-5 Precursor , 2019, Atmospheric Measurement Techniques.
[48] Li Li,et al. The effects of firework regulation on air quality and public health during the Chinese Spring Festival from 2013 to 2017 in a Chinese megacity. , 2019, Environment international.
[49] Jing Wei,et al. Evaluation of MAIAC aerosol retrievals over China , 2019, Atmospheric Environment.
[50] Xingfa Gu,et al. Spatial and temporal variations of air quality and six air pollutants in China during 2015–2017 , 2019, Scientific Reports.
[51] Yu Zheng,et al. A modelling study of the terrain effects on haze pollution in the Sichuan Basin , 2019, Atmospheric Environment.
[52] Francesco Marinello,et al. Spatial Variation of NO2 and Its Impact Factors in China: An Application of Sentinel-5P Products , 2019, Remote. Sens..
[53] Wei Gong,et al. Long‐Term Investigation of Aerosol Optical and Radiative Characteristics in a Typical Megacity of Central China During Winter Haze Periods , 2019, Journal of Geophysical Research: Atmospheres.
[54] Yun Shi,et al. Evaluation of the Multi-Angle Implementation of Atmospheric Correction (MAIAC) Aerosol Algorithm for Himawari-8 Data , 2019, Remote. Sens..
[55] Meng Zhang,et al. The impacts of the meteorology features on PM2.5 levels during a severe haze episode in central-east China , 2019, Atmospheric Environment.
[56] Lu Shen,et al. Fine particulate matter (PM2.5) trends in China, 2013–2018: separating contributions from anthropogenic emissions and meteorology , 2019, Atmospheric Chemistry and Physics.
[57] Guy P. Brasseur,et al. Ensemble forecasts of air quality in eastern China – Part 1: Model description and implementation of the MarcoPolo–Panda prediction system, version 1 , 2019, Geoscientific Model Development.
[58] Can Ye,et al. Formation mechanisms of atmospheric nitrate and sulfate during the winter haze pollution periods in Beijing: gas-phase, heterogeneous and aqueous-phase chemistry , 2020 .
[59] Chuanfeng Zhao,et al. A comprehensive analysis of the spatio-temporal variation of urban air pollution in China during 2014–2018 , 2020 .
[60] Ying Li,et al. Hourly PM2.5 Estimation over Central and Eastern China Based on Himawari-8 Data , 2020, Remote. Sens..
[61] Tao Song,et al. Rapid formation of intense haze episodes via aerosol–boundary layer feedback in Beijing , 2020 .
[62] Miao Chang,et al. Analysis of air quality characteristics of Beijing-Tianjin-Hebei and its surrounding air pollution transport channel cities in China. , 2020, Journal of environmental sciences.
[63] H. Bai,et al. Assessment of health benefit of PM2.5 reduction during COVID-19 lockdown in China and separating contributions from anthropogenic emissions and meteorology , 2021, Journal of Environmental Sciences.