Acta Optica Sinica, Volume. 44, Issue 6, 0628002(2024)

Analysis of Core-Shell Mixed Aerosol Optical Properties Constrained by Satellite and Ground-Based Remote Sensing Observations

Xinying Wang1, Kai Qin2, Cohen Jason2、*, and Shuo Wang3
Author Affiliations
  • 1School of Atmospheric Sciences, Sun Yat-sen University, Zhuhai 519000, Guangdong , China
  • 2School of Environment and Spatial Informatics, China University of Mining and Technology, Xuzhou 221018, Jiangsu , China
  • 3Carbon Neutrality Institute, China University of Mining and Technology, Xuzhou , 221018, Jiangsu , China
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    References(49)

    [1] Charlson R J. Atmospheric visibility related to aerosol mass concentration: review[J]. Environmental Science & Technology, 3, 913-918(1969).

    [2] Tiwari S, Payra S, Mohan M J et al. Visibility degradation during foggy period due to anthropogenic urban aerosol at Delhi, India[J]. Atmospheric Pollution Research, 2, 116-120(2011).

    [3] Anderson E L, Turnham P, Griffin J R et al. Consideration of the aerosol transmission for COVID-19 and public health[J]. Risk Analysis, 40, 902-907(2020).

    [4] Hansen J, Sato M, Ruedy R. Radiative forcing and climate response[J]. Journal of Geophysical Research: Atmospheres, 102, 6831-6864(1997).

    [5] Sokolik I N, Toon O B. Direct radiative forcing by anthropogenic airborne mineral aerosols[J]. Nature, 381, 681-683(1996).

    [6] Sun H, Pan Z T, Liu X D. Numerical simulation of spatial-temporal distribution of dust aerosol and its direct radiative effects on East Asian climate[J]. Journal of Geophysical Research: Atmospheres, 117, D13206(2012).

    [7] Vester B P, Ebert M, Barnert E B et al. Composition and mixing state of the urban background aerosol in the Rhein-Main area (Germany)[J]. Atmospheric Environment, 41, 6102-6115(2007).

    [8] Mann G W, Carslaw K S, Reddington C L et al. Intercomparison and evaluation of global aerosol microphysical properties among AeroCom models of a range of complexity[J]. Atmospheric Chemistry and Physics, 14, 4679-4713(2014).

    [9] Spracklen D V, Pringle K J, Carslaw K S et al. A global off-line model of size-resolved aerosol microphysics: I. Model development and prediction of aerosol properties[J]. Atmospheric Chemistry and Physics, 5, 2227-2252(2005).

    [10] Moise T, Flores J M, Rudich Y. Optical properties of secondary organic aerosols and their changes by chemical processes[J]. Chemical Reviews, 115, 4400-4439(2015).

    [11] Su T N, Li Z Q, Li C C et al. The significant impact of aerosol vertical structure on lower atmosphere stability and its critical role in aerosol–planetary boundary layer (PBL) interactions[J]. Atmospheric Chemistry and Physics, 20, 3713-3724(2020).

    [12] Cohen J B, Prinn R G, Wang C E. The impact of detailed urban-scale processing on the composition, distribution, and radiative forcing of anthropogenic aerosols[J]. Geophysical Research Letters, 38, L10808(2011).

    [13] Kim D H, Sohn B J, Nakajima T et al. Aerosol optical properties over East Asia determined from ground-based sky radiation measurements[J]. Journal of Geophysical Research: Atmospheres, 109, D02209(2004).

    [14] Kim S W, Yoon S C, Kim J et al. Seasonal and monthly variations of columnar aerosol optical properties over East Asia determined from multi-year MODIS, LIDAR, and AERONET Sun/sky radiometer measurements[J]. Atmospheric Environment, 41, 1634-1651(2007).

    [15] Kaufman Y J, Tanré D, Remer L A et al. Operational remote sensing of tropospheric aerosol over land from EOS moderate resolution imaging spectroradiometer[J]. Journal of Geophysical Research: Atmospheres, 102, 17051-17067(1997).

    [16] Yuan Y, Yi H L, Shuai Y et al. Inverse problem for aerosol particle size distribution using SPSO associated with multi-lognormal distribution model[J]. Atmospheric Environment, 45, 4892-4897(2011).

    [17] Wu X A, Seigneur C, Bergstrom R W. Evaluation of a sectional representation of size distributions for calculating aerosol optical properties[J]. Journal of Geophysical Research: Atmospheres, 101, 19277-19283(1996).

    [18] Koch D, Schulz M, Kinne S et al. Evaluation of black carbon estimations in global aerosol models[J]. Atmospheric Chemistry and Physics, 9, 9001-9026(2009).

    [19] Bond T C, Doherty S J, Fahey D W et al. Bounding the role of black carbon in the climate system: a scientific assessment[J]. Journal of Geophysical Research: Atmospheres, 118, 5380-5552(2013).

    [20] Wang S, Wang X Y, Cohen J B et al. Inferring polluted Asian absorbing aerosol properties using decadal scale AERONET measurements and a MIE model[J]. Geophysical Research Letters, 48, L094300(2021).

    [21] Peng J F, Hu M, Guo S et al. Markedly enhanced absorption and direct radiative forcing of black carbon under polluted urban environments[J]. Proceedings of the National Academy of Sciences of the United States of America, 113, 4266-4271(2016).

    [22] Dubovik O, Holben B N, Lapyonok T et al. Non-spherical aerosol retrieval method employing light scattering by spheroids[J]. Geophysical Research Letters, 29, L014506(2002).

    [23] Harczuk I, Vahtras O, Ågren H. Modeling Rayleigh scattering of aerosol particles[J]. The Journal of Physical Chemistry B, 120, 4296-4301(2016).

    [24] Mao F Y, Xu W W, Zang L et al. Research progress and challenges in retrieval of ground-based Mie scattering lidar[J]. Acta Optica Sinica, 43, 1899907(2023).

    [25] Mao Q J, Yang K Y. Optical scattering properties of particle and group particles with core-shell structure[J]. Laser & Optoelectronics Progress, 60, 2129001(2023).

    [26] Cohen J B, Wang C. Estimating global black carbon emissions using a top-down Kalman Filter approach[J]. Journal of Geophysical Research: Atmospheres, 119, 307-323(2014).

    [27] Ueda S, Nakayama T, Taketani F et al. Light absorption and morphological properties of soot-containing aerosols observed at an East Asian outflow site, Noto Peninsula, Japan[J]. Atmospheric Chemistry and Physics, 16, 2525-2541(2016).

    [28] Schafer J S, Eck T F, Holben B N et al. Intercomparison of aerosol single-scattering albedo derived from AERONET surface radiometers and LARGE in situ aircraft profiles during the 2011 DRAGON-MD and DISCOVER-AQ experiments[J]. Journal of Geophysical Research: Atmospheres, 119, 7439-7452(2014).

    [29] Boiyo R, Kumar K R, Zhao T L et al. A 10-year record of aerosol optical properties and radiative forcing over three environmentally distinct AERONET sites in Kenya, East Africa[J]. Journal of Geophysical Research: Atmospheres, 124, 1596-1617(2019).

    [30] Zhang X Y, Hu H B. Spatio-temporal characteristics of aerosol optical depth and their relationship with urbanization over Beijing-Tianjin-Hebei region[J]. Chinese Journal of Atmospheric Sciences, 41, 797-810(2017).

    [31] Wang H L, Liu Q, Chen Y H et al. Applicability of MODIS C006 aerosol products in a typical environmental area of the Beijing-Tianjin-Hebei region[J]. Environmental Science, 40, 44-54(2019).

    [32] Huang W S, Li Z, Li Q G et al. Retrieval of aerosol optical thickness over Hong Kong and Pearl River Delta region using MODIS satellite data[J]. Acta Scientiae Circumstantiae, 29, 1372-1380(2009).

    [33] Jia C, Sun L, Wang Y J et al. Accuracy validation of 1 km resolution AOD products in Beijing-Tianjin-Hebei region and correlation analysis with air pollution[J]. Laser & Optoelectronics Progress, 57, 232802(2020).

    [34] Chen H Y, Wang X Q, Cheng S Y et al. Analysis of meteorological causes and transmission characteristics of a heavy haze process in Beijing Tianjin Hebei and Yangtze River Delta[J]. China Environmental Science, 41, 2481-2492(2021).

    [35] Shao X Y, Wang X Q, Zhong Y S et al. Impacts of anthropogenic emission reduction and meteorological conditions on PM2.5 pollution in typical cities of Beijing-Tianjin-Hebei in winter[J]. Environmental Science, 42, 4095-4103(2021).

    [36] Liu Y T, Wu M Q, Niu Z et al. Trend analysis of ground-based aerosol optical thickness in Beijing from 2005 to 2018[J]. Remote Sensing Information, 37, 73-79(2022).

    [37] Liu C X, He C, He G W et al. Analysis of the influence of high-level horizontal transportation on three-dimensional ozone concentration distribution in Zhuhai under the influence of cold and high pressure[J]. Acta Scientiae Circumstantiae, 43, 119-127(2023).

    [38] Zhou X S, Liao Z H, Wang M et al. Characteristics of ozone concentration and its relationship with meteorological factors in Zhuhai during 2013-2016[J]. Acta Scientiae Circumstantiae, 39, 143-153(2019).

    [39] Li J, Wang Z F, Xiang W L. Daytime atmospheric oxidation capacity of urban Beijing under polluted conditions during the 2008 Beijing Olympic games and the impact of aerosols[J]. SOLA, 7, 73-76(2011).

    [40] Wu D, Mao J T, Deng X J et al. Black carbon aerosols and their radiative properties in the Pearl River Delta region[J]. Science in China Series D: Earth Sciences, 52, 1152-1163(2009).

    [41] Samset B H, Myhre G, Herber A et al. Modelled black carbon radiative forcing and atmospheric lifetime in AeroCom Phase II constrained by aircraft observations[J]. Atmospheric Chemistry and Physics, 14, 12465-12477(2014).

    [42] Wang L, Zhang F Y, Pilot E et al. Taking action on air pollution control in the Beijing-Tianjin-Hebei (BTH) region: progress, challenges and opportunities[J]. International Journal of Environmental Research and Public Health, 15, 306(2018).

    [43] Liu J, Kiesewetter G, Klimont Z et al. Mitigation pathways of air pollution from residential emissions in the Beijing-Tianjin-Hebei region in China[J]. Environment International, 125, 236-244(2019).

    [44] Wang Q Y, Huang R J, Cao J J et al. Contribution of regional transport to the black carbon aerosol during winter haze period in Beijing[J]. Atmospheric Environment, 132, 11-18(2016).

    [45] Li J Y, Gao W K, Cao L M et al. Effects of different stagnant meteorological conditions on aerosol chemistry and regional transport changes in Beijing, China[J]. Atmospheric Environment, 258, 118483(2021).

    [46] Zhang Z S, Engling G, Lin C Y et al. Chemical speciation, transport and contribution of biomass burning smoke to ambient aerosol in Guangzhou, a mega city of China[J]. Atmospheric Environment, 44, 3187-3195(2010).

    [47] Cao J J, Lee S C, Ho K F et al. Characteristics of carbonaceous aerosol in Pearl River Delta Region, China during 2001 winter period[J]. Atmospheric Environment, 37, 1451-1460(2003).

    [48] Duan J C, Tan J H, Cheng D X et al. Sources and characteristics of carbonaceous aerosol in two largest cities in Pearl River Delta Region, China[J]. Atmospheric Environment, 41, 2895-2903(2007).

    [49] Park M H, Kim Y P, Kang C H et al. Aerosol composition change between 1992 and 2002 at Gosan, Korea[J]. Journal of Geophysical Research: Atmospheres, 109, D19-13(2004).

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    Xinying Wang, Kai Qin, Cohen Jason, Shuo Wang. Analysis of Core-Shell Mixed Aerosol Optical Properties Constrained by Satellite and Ground-Based Remote Sensing Observations[J]. Acta Optica Sinica, 2024, 44(6): 0628002

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    Paper Information

    Category: Remote Sensing and Sensors

    Received: Jun. 2, 2023

    Accepted: Oct. 13, 2023

    Published Online: Mar. 15, 2024

    The Author Email: Jason Cohen (wjjs0011@cumt.edu.cn)

    DOI:10.3788/AOS231088

    CSTR:32393.14.AOS231088

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