科研成果

英文期刊论文:

 

[285] Yue X., H. Zhou, Y. Cao, H. Liao*, X. Lu, Z. Yu, W. Yuan, Z. Liu, Y. Lei, S. Sitch, J. Knauer, and H. Wang, Large potential of strengthening the land carbon sink in China through anthropogenic interventions, Science Bulletin, in press, 2024. [PDF]
[284] Qian J., and H. Liao*, Effectiveness of precursor emission reductions for the control of summertime ozone and PM2.5 in the Beijing–Tianjin–Hebei region under different meteorological conditions, Adv. Atmos. Sci., in press, 2024. [PDF]
[283] Yang L., Y. Mao, H. Liao, M. Xie, Y. Zhang, Direct radiative forcing of light-absorbing carbonaceous aerosols in China, Atmos. Res., 304, 107396, doi:10.1016/j.atmosres.2024.107396, 2024. [PDF]
[282] Zhu J., X. Yue, H. Zhou, H. Che, X. Xia, J. Wang, T. Zhao, C. Tian, and H. Liao, The multi-year contribution of Indo-China peninsula fire emissions to aerosol radiation forcing in southern China during 2013–2019, Science of the Total Environment, 927, 172337, doi:10.1016/j.scitotenv.2024.172337, 2024. [PDF]
[281] Mao Y., Y. Shang, H. Liao, H. Cao, Z. Qu, and D. K. Henze, Sensitivities of ozone to its precursors during heavy ozone pollution events in the Yangtze River Delta using the adjoint method, Science of the Total Environment, 925, 171585, doi:10.1016/j.scitotenv.2024.171585, 2024. [PDF]
[280] Dai H., H. Liao*, Y. Wang, and J. Qian, Co-occurrence of ozone and PM2.5 pollution in urban/non-urban areas in eastern China from 2013 to 2020: Roles of meteorology and anthropogenic emissions, Science of the Total Environment, 924, 171687, doi:10.1016/j.scitotenv.2024.171687, 2024. [PDF]
[279] Yang H., L. Chen*, H. Liao*, J. Zhu, W. Wang, and X. Li, Weakened aerosol-radiation interaction exacerbating ozone pollution in eastern China since China's clean air actions, Atmos. Chem. Phys., 24, 4001-4015, doi:10.5194/acp-24-4001-2024, 2024. [PDF]
[278] Peng W., B. Zhu, H. Kang, K. Chen, W. Lu, C. Lu, N. Kang, J. Hu, H. Chen, and H. Liao, Inconsistent 3-D structures and sources of sulfate ammonium and nitrate ammonium aerosols during cold front episodes, J. Geophys. Res., 129, e2023JD039958, doi:10.1029/2023JD039958, 2024. [PDF]
[277] Xu C., Y. Mao, and H. Liao, Future ozone changes and their impacts on vegetation and human health in China under the Shared Socio‐Economic Pathways, J. Geophys. Res., 129, e2023JD040086, doi:10.1029/ 2023JD040086, 2024. [PDF]
[276] Gu Y., F. Yan, J. Xu, L. Pan, C. Yin, W. Gao, and H. Liao, Observational evidence of the vertical exchange of ozone within the urban planetary boundary layer in Shanghai, China, Atmosphere, 15, 248, doi:10.3390/ atmos15030248, 2024. [PDF]
[275] Yan F., H. Su, Y. Cheng, R. Huang, H. Liao, T. Yang, Y. Zhu, S. Zhang, L. Sheng, W. Kou, X. Zeng, S. Xiang, X. Yao, H. Gao, and Y. Gao, Frequent haze events associated with transport and stagnation over the corridor between North China Plain and Yangtze River Delta, Atmos. Chem. Phys., 24, 2365-2376, doi:10.5194/acp-24-2365-2024, 2024. [PDF]
[274] Chen X., K. Li, T. Yang, Z. Yang, X. Wang, B. Zhu, L. Chen, Y. Yang, Z. Wang, and H. Liao, Trends and drivers of aerosol vertical distribution over China from 2013 to 2020: Insights from integrated observations and modeling, Science of the Total Environment, 917, 170485, doi:10.1016/j.scitotenv.2024.170485, 2024. [PDF]
[273] Bai Y., L. Chen, Z. Feng, J. Zhu, Y. Gu, K. Li, and H. Liao, Historical and future health burden attributable to PM2.5 exposure in China, Atmospheric Environment, 322, 120363, doi:10.1016/j.atmosenv.2024.120363, 2024. [PDF]
[272] Zhu J., Y. Yang, H. Wang, J. Gao, C. Liu, P. Wang, and H. Liao, Impacts of projected changes in sea surface temperature on ozone pollution in China toward carbon neutrality, Science of the Total Environment, 915, 170024, doi:10.1016/j.scitotenv.2024.170024, 2024. [PDF]
[271] Gan C., B. Li, J. Dong, Y. Li, Y. Zhao, T. Wang, Y. Yang, and H. Liao, Atmospheric HONO emissions in China: Unraveling the spatiotemporal patterns and their key influencing factors, Environmental Pollution, 343, 123228, doi:10.1016/j.envpol.2023.123228, 2024. [PDF]
[270] Xu B., J. Jin*, L. Fang, M. Pang, J. Xia, B. Li, and H. Liao*, A decadal atmospheric ammonia reanalysis product in China, Science of the Total Environment, 912, 169053, doi:10.1016/j.scitotenv.2023.169053, 2024. [PDF]
[269] Yang Y., Y. Zhou, H. Wang, M. Li, H. Li, P. Wang, X. Yue, K. Li, J. Zhu, and H. Liao, Meteorological characteristics of severe ozone pollution events in China and their future predictions, Atmos. Chem. Phys., 24, 1177-1191, doi:10.5194/acp-24-1177-2024, 2024. [PDF]
[268] Xie B., Y. Yang, H. Wang, P. Wang, and H. Liao, Biomass burning emissions of black carbon over the maritime continent and ENSO variability, J. Clim., 36, 8365–8376, doi:10.1175/JCLI-D-22-0553.1, 2023. [PDF]
[267] Dang R., D. J. Jacob, S. Zhai, P. Coheur, L. Clarisse, M. V. Damme, D. C. Pendergrass, J. Choi, J. Park, Z. Liu, and H. Liao, Diagnosing the sensitivity of particulate nitrate to precursor emissions using satellite observations of ammonia and nitrogen dioxide, Geophys. Res. Lett., 50, e2023GL105761, doi:10.1029/2023GL105761, 2023. [PDF]
[266] Wang P., Y. Yang, D. Xue, L. Ren, J. Tang, L. R. Leung, and H. Liao, Aerosols overtake greenhouse gases causing a warmer climate and more weather extremes toward carbon neutrality, Nature Communications, 14:7257, doi:10.1038/s41467-023-42891-2, 2023. [PDF]
[265] Ni Y., Y. Yang, H. Wang, H. Li, P. Wang, K. Li, and H. Liao, Contrasting changes in ozone during 2019–2021 between eastern and the other regions of China attributed to anthropogenic emissions and meteorological conditions, Science of the Total Environment, 908, 168272, doi:10.1016/j.scitotenv.2023.168272, 2023. [PDF]
[264] Gao J., Y. Yang, H. Wang, P. Wang, B. Li, J. Li, J. Wei, M. Gao, and H. Liao, Climate responses in China to domestic and foreign aerosol changes due to clean air actions during 2013–2019, npj Climate and Atmospheric Science, 6:160, doi:10.1038/s41612-023-00488-y, 2023. [PDF]
[263] Chen X., M. Wang, T. He, Z. Jiang, Y. Zhang, L. Zhou, J. Liu, H. Liao, H. Worden, D. Jones, D. Chen, Q. Tan, and Y. Shen, Data- and model-based urban O3 responses to NOx changes in China and United States, J. Geophys. Res., 128, e2022JD038228, doi:10.1029/2022JD038228, 2023. [PDF]
[262] Chen G., J. Wang, Y. Wang, J. Wang, Y. Jin, Y. Cheng, Y. Yin, H. Liao, A. Ding, S. Wang, J. Hao, and C. Liu, An aerosol optical module with observation-constrained black carbon properties for global climate models, Journal of Advances in Modeling Earth Systems, 15, e2022MS003501, doi:10.1029/2022MS003501, 2023. [PDF]
[261] Feng W., X. Wang, Z. Shao, H. Liao, Y. Wang, and M. Xie, Time-resolved measurements of PM2.5 chemical composition and brown carbon absorption in Nanjing, East China: Diurnal variations and organic tracer-based PMF analysis, J. Geophys. Res., 128, e2023JD039092, doi:10.1029/2023JD039092, 2023. [PDF]
[260] Chen L., H. Liao*, K. Li, J. Zhu, Z. Long, X. Yue, Y. Yang, and M. Zhang, Process-Level quantification on opposite PM2.5 changes during the COVID-19 lockdown over the North China Plain, Environ. Sci. Technol. Lett., 10, 779-785, doi:10.1021/acs.estlett.3c00490, 2023. [PDF]
[259] Zhang X., X. Xiao, F. Wang, Y. Yang, H. Liao, S. Wang, and M. Gao, Discordant future climate-driven changes in winter PM2.5 pollution across India under a warming climate, Elementa: Science of the Anthropocene, 11(1), 00149, doi:10.1525/elementa.2022.00149, 2023. [PDF]
[258] Xie X., J. Hu, M. Qin, S. Guo, M. Hu, D. Ji, H. Wang, S. Lou, C. Huang, C. Liu, H. Zhang, Q. Ying, H. Liao, and Y. Zhang, Evolution of atmospheric age of particles and its implications for the formation of a severe haze event in eastern China, Atmos. Chem. Phys., 23, 10563-10578, doi:10.5194/acp-23-10563-2023, 2023. [PDF]
[257] Sun C., B. Li*, L. Chen, Y. Gao, J. Jin, X. Gu, Y. Yang, Y. Lou, Y. Zhao, and H. Liao*, An improved hourly-resolved atmospheric NOx emission inventory of industrial sources based on continuous emission monitoring system data: Case of Jiangsu Province, China, Journal of Cleaner Production, 419, 138192, doi:10.1016/j.jclepro.2023.138192, 2023. [PDF]
[256] Fang L., J. Jin*, A. Segers, K. Li, B. Xu, W. Han, M. Pang, H. X. Lin, and H. Liao*, A gridded air quality forecast through fusing site-available machine learning predictions from RFSML V1.0 and chemical transport model results from GEOS-Chem V13.1.0 using the ensemble Kalman filter, Geoscientific Model Development, 16, 4867-4882, doi:10.5194/gmd-16-4867-2023, 2023. [PDF]
[255] Wang Y., H. Liao*, H. Chen, and L. Chen, Future projection of mortality from exposure to PM2.5 and O3 under the carbon neutral pathway: roles of changing emissions and population aging, Geophys. Res. Lett., 50, e2023GL104838, doi:10.1029/2023GL104838, 2023. [PDF]
[254] Zhao Y., B. Li, J. Dong, Y. Li, X. Wang, C. Gan, Y. Lin, and H. Liao, Improved ammonia emission inventory of fertilizer application for three major crops in China based on phenological data, Science of the Total Environment, 896, 165225, doi:10.1016/j.scitotenv.2023.165225, 2023. [PDF]
[253] Liu Z., Y. Chen, Y. Wang, C. Liu, S. Liu, and H. Liao, The development and validation of the inhomogeneous wind scheme for urban street (IWSUS-v1), Geoscientific Model Development, 16, 4385-4403, doi:10.5149/gmd-16-4385-2023, 2023. [PDF]
[252] Brewer J. F. , D. J. Jacob, S. H. Jathar, Y. He, A. Akherati, A. Hodzic, B. A. Nault, P. Campuzano-Jost, J. L. Jimenez, and H. Liao, A scheme for representing aromatic secondary organic aerosols in chemical transport models: application to source attribution of organic aerosols over South Korea during the KORUS-AQ campaign, J. Geophys. Res., 128, e2022JD037257, doi:10.1029/2022JD037257, 2023. [PDF]
[251] Pang M., J. Jin, A. Segers, H. Jiang, L. Fang, H. Lin, and H. Liao, Dust storm forecasting through coupling LOTOS-EUROS with localized ensemble Kalman filter, Atmos. Environ., 306, 119831, doi:10.1016/j.atmosenv.2023.119831, 2023. [PDF]
[250] Dong J., B. Li, Y. Li, R. Zhou, C. Gan, Y. Zhao, R. Liu, Y. Yang, T. Wang, and H. Liao, Atmospheric ammonia in China: Long-term spatiotemporal variation, urban-rural gradient, and influencing factors, Science of the Total Environment, 883, 163733, doi:10.1016/j.scitotenv.2023.163733, 2023. [PDF]
[249] Li P., Y. Yang, H. Wang, S. Li, K. Li, P. Wang, B. Li, and H. Liao, Source attribution of near-surface ozone trends in the United States during 1995–2019, Atmos. Chem. Phys., 23, 5403-5417, doi:10.5194/acp-23-5403-2023, 2023. [PDF]
[248] Li S., Y. Yang, H. Wang, P. Li, K. Li, L. Ren, P. Wang, B. Li, Y. Mao, and H. Liao, Rapid increase in tropospheric ozone over Southeast Asia attributed to changes in precursor emission source regions and sectors, Atmos. Environ., 304, 119776, doi:10.1016/j.atmosenv.2023.119776, 2023. [PDF]
[247] Zhu T., M. Tang, M. Gao, X. Bi, J. Cao, H. Che, J. Chen, A. Ding, P. Fu, J. Gao, Y. Gao, M. Ge, X. Ge, Z. Han, H. He, R. Huang, X. Huang, H. Liao, C. Liu, H. Liu, J. Liu, S. Liu, K. Lu, Q. Ma, W. Nie, M. Shao, Y. Song, Y. Sun, X. Tang, T. Wang, T. Wang, W. Wang, X. Wang, Z. Wang, Y. Yin, Q. Zhang, W. Zhang, Y. Zhang, Y. Zhang, Y. Zhao, M. Zheng, B. Zhu, and J. Zhu, Recent progress of atmospheric chemistry research in China: establishing the theoretical framework of air pollution complex, Adv. Atmos. Sci., 40, 1339-1361, doi:10.1007/s00376-00023-02379-00370, 2023. [PDF]
[246] Zhai S., D. J. Jacob, D. C. Pendergrass, N. K. Colombi, V. Shah, L. H. Yang, Q. Zhang, S. Wang, H. Kim, Y. Sun, J.-S. Choi, J.-S. Park, G. Luo, F. Yu, J.-H. Woo, Y. Kim, J. E. Dibb, T. Lee, J.-S. Han, B. E. Anderson, K. Li, , and H. Liao, Coarse particulate matter air quality in East Asia: implications for fine particulate nitrate, Atmos. Chem. Phys., 23, 4271-4281, doi:10.5194/acp-23-4271-2023, 2023. [PDF]
[245] Colombi Nr. K., D. J. Jacob, L. H. Yang, S. Zhai, V. S., S. K. Grange, R. M. Yantosca, S. Kim, and H. Liao, Why is ozone in South Korea and the Seoul Metropolitan Area so high and increasing?, Atmos. Chem. Phys., 23, 4031-4044, doi:10.5194/acp-23-4031-2023, 2023. [PDF]
[244] Tian C., X. Yue, J. Zhu, H. Liao, Y. Yang, L. Chen, X. Zhou, Y. Lei, H. Zhou, and Y. Cao, Projections of fire emissions and the consequent impacts on air quality under 1.5 °C and 2 °C global warming, Environmental Pollution, 323, 121311, doi:10.1016/j.envpol.2023.121311, 2023. [PDF]
[243] Jin J., L. Fang, H. Liao*, B. Li, A. Segers, W. Han, Y. Wang, K. Li, M. Pang, X. Wu, and H. X. Lin, 4DEnVar-based inversion system for ammonia emission estimation in China through assimilating IASI ammonia retrievals, Environ. Res. Lett., 18, 034005, doi:10.1088/1748-9326/acb835, 2023. [PDF]
[242] Li J., X. Hao, H. Liao*, H. Dai, N. Li, Y. Gu, R. Dang, B. Li, and Y. Wei, Air pollution mitigation in North China through flexible heating policies, Environ. Res. Lett., 18, 024026, doi:10.1088/1748-9326/acb3e2, 2023. [PDF]
[241] Chang F., J. Li, N. Li*, and H. Liao*, Stratospheric intrusion may aggravate widespread ozone pollution through both vertical and horizontal advections in eastern China during summer, Front. Environ. Sci., 10:1115746, doi:10.3389/fenvs.2022.1115746, 2023. [PDF]
[240] Li M., Y. Yang, H. Wang, H. Li, P. Wang, and H. Liao, Ozone pollution in China affected by stratospheric quasi-biennial oscillation, Atmos. Chem. Phys., 23, 1533-1544, doi:10.5194/acp-23-1533-2023, 2023. [PDF]
[239] Li N., H. Zhang, S. Zhu, H. Liao*, J. Hu, K. Tang, W. Feng, R. Zhang, C. Shi, H. Xu, L. Chen, and J. Li, Secondary PM2.5 dominates aerosol pollution in the Yangtze River Delta region: Environmental and health effects of the Clean air Plan, Environment International, 171, 107725, doi:10.1016/j.envint.2022.107725, 2023. [PDF]
[238] Li H., Y. Yang, J. Jin, H. Wang, K. Li, P. Wang, and H. Liao, Climate-driven deterioration of future ozone pollution in Asia predicted by machine learning with multisource data, Atmos. Chem. Phys., 23, 1131-1145, doi:10.5194/acp-23-1131-2023, 2023. [PDF]
[237] Dai H., H. Liao*, K. Li, X. Yue, Y. Yang, J. Zhu, J. Jin, B. Li, and X. Jiang, Composited analyses of the chemical and physical characteristics of co-polluted days by ozone and PM2.5 over 2013–2020 in the Beijing–Tianjin–Hebei region, Atmos. Chem. Phys., 23, 23-39, doi:10.5194/acp-23-23-2023, 2023. [PDF]
[236] Wang P., Y. Yang, D. Xue, Y. Qu, J. Tang, L. R. Leung, and H. Liao, Increasing Compound Hazards of Tropical Cyclones and Heat Waves Over Southeastern Coast of China Under Climate Warming, J. Clim., 36, 2243-2257, doi:10.1175/JCLI-D-22-0279.1, 2023. [PDF]
[235] Yang Y., L. Zeng, H. Wang, P. Wang, and H. Liao, Climate effects of future aerosol reductions for achieving carbon neutrality in China, Science Bulletin, 68, 902-905, doi:10.1016/j.scib.2023.03.048, 2023. [PDF]
[234] Li Y., B. Li, H. Liao, B. Zhou, J. Wei, Y. Wang, Y. Zang, Y. Yang, R. Liu, and X. Wang, Changes in PM2.5-related health burden in China's poverty and non-poverty areas during 2000–2020: A health inequality perspective, Science of the Total Environment, 861, 160517, doi:10.1016/j.scitotenv.2022.160517, 2023. [PDF]
[233] Liu C., Y. Yang, H. Wang, L. Ren, J. Wei, P. Wang, and H. Liao, Influence of spatial dipole pattern in Asian aerosol changes on East Asian summer monsoon, J. Clim., 36, 1575-1585, doi:10.1175/JCLI-D-22-0335.1, 2023. [PDF]
[232] Chen L., H. Liao*, J. Zhu, K. Li, Y. Bai, X. Yue, Y. Yang, J. Hu, M. Zhang, Increases in ozone-related mortality in China over 2013–2030 attributed to historical ozone deterioration and future population aging, Science of the Total Environment, 858, 159972, doi:10.1016/j.scitotenv.2022.159972, 2023. [PDF]
[231] Yang Y., L. Zeng, H. Wang, P. Wang, and H. Liao, Dust pollution in China affected by different spatial and temporal types of El Niño, Atmos. Chem. Phys., 22, 14489-14502, doi:10.5194/acp-22-14489-2022, 2022. [PDF]
[230] Xu Z., W. Feng, Y. Wang, H. Ye, Y. Wang, H. Liao, and M. Xie, Potential underestimation of ambient brown carbon absorption based on the methanol extraction method and its impacts on source analysis, Atmos. Chem. Phys., 22, 13739-13752, doi:10.5194/acp-22-13739-2022, 2022. [PDF]
[229] Wang Y., J. Hu, L. Huang, T. Li, X. Yue, X. Xie, H. Liao, K. Chen, and M. Wang, Projecting future health burden associated with exposure to ambient PM2.5 and ozone in China under different climate scenarios, Environment International, 169, 107542, doi:10.1016/j.envint.2022.107542, 2022. [PDF]
[228] Fang L., J. Jin*, A. Segers, H. X. Lin, M. Pang, C. Xiao, T. Deng, and H. Liao*, Development of a regional feature selection-based machine learning system (RFSML v1.0) for air pollution forecasting over China, Geoscientific Model Development, 15, 7791-7807, doi:10.5194/gmd-15-7791-2022, 2022. [PDF]
[227] Gao Y., H. Liao*, H. Chen, B. Zhu, J. Hu, X. Ge, L. Chen, J. Li, Composite analysis of aerosol direct radiative effects on meteorology during wintertime severe haze events in the North China Plain, J. Geophys. Res., 127, e2022JD036902, doi:10.1029/2022JD036902, 2022. [PDF]
[226] Liang L., Z. Han, J. Li, X. Xia, Y. Sun, H. Liao, R. Liu, M. Liang, Y. Gao, R. Zhang, Emission, transport, deposition, chemical and radiative impacts of mineral dust during severe dust storm periods in March 2021 over East Asia, Science of the Total Environment, 852, 158459, doi:10.1016/j.scitotenv.2022.158459, 2022. [PDF]
[225] Tian C., X. Yue, J. Zhu, H. Liao, Y. Yang, Y. Lei, X. Zhou, H. Zhou, Y. Ma, and Y. Cao, Fire-climate interactions through aerosol radiative effect in a global chemistry-climate-vegetation model, Atmos. Chem. Phys., 22, 12353-12366, doi:10.5194/acp-22-12353-2022, 2022. [PDF]
[224] Zhou Y., Y. Yang, H. Wang, J. Wang, M. Li, H. Li, P. Wang, J. Zhu, K. Li, and H. Liao, Summer ozone pollution in China affected by the intensity of Asian monsoon systems, Science of the Total Environment, 849, 157785, doi:10.1016/j.scitotenv.2022.157785, 2022. [PDF]
[223] Gu X., B. Li, C. Sun, H. Liao, Y. Zhao, and Y. Yang, An improved hourly-resolved NOx emission inventory for power plants based on continuous emission monitoring system (CEMS) database: A case in Jiangsu, China, Journal of Cleaner Production, 369, 133176, doi:10.1016/j.jclepro.2022.133176, 2022. [PDF]
[222] Ren L., Y. Yang, H. Wang, P. Wang, X. Yue, and H. Liao, Widespread wildfires over the western United States in 2020 linked to emissions reductions during COVID-19, Geophys. Res. Lett., 49, e2022GL099308, doi:10.1029/2022GL099308, 2022. [PDF]
[221] Shi S., B. Zhu, G. Tang, C. Liu, J. An, D. Liu, J. Xu, H. Xu, H. Liao, and Y. Zhang, Observational evidence of aerosol radiation modifying the profiles of photochemical ozone in the lower troposphere, Geophys. Res. Lett., 49, e2022GL099274, doi:10.1029/2022GL099274, 2022. [PDF]
[220] Sun S., D. Zhou, H. Chen, J. Li, Y. Ren, H. Liao,and Y. Liu, Detectable impacts of the coronavirus disease 2019 (COVID-19) on the urban heat island effect in Wuhan, China, Int. J. Climatol., 42, 8792-8803, doi:10.1002/joc.7771, 2022. [PDF]
[219] Zhu J., X. Yue, H. Che, X. Xia, Y. Lei, J. Wang, T. Zhao, X. Yu, H. Zhou, and H. Liao, Contribution of fire emissions to PM2.5 and its transport mechanism over the Yungui Plateau, China during 2015-2019, J. Geophys. Res., 127, e2022JD036734, doi:10.1029/2022JD036734, 2022. [PDF]
[218] Li S., C. Chen, G. Yang, J. Fang, Y. Sun, L. Tang, H. Wang, W. Xiang, H. Zhang, P. L. Croteau, J. T. Jayne, H. Liao, X. Ge, O. Favez, Y. Zhang, Sources and processes of organic aerosol in non-refractory PM1 and PM2.5 during foggy and haze episodes in an urban environment of the Yangtze River Delta, China, Environmental Research, 212, 113557, doi:10.1016/j.envres.2022.113557, 2022. [PDF]
[217] Cui S., D. Huang, Y. Wu, J. Wang, F. Shen, J. Xian, Y. Zhang, H. Wang, C. Huang, H. Liao, and X. Ge, Chemical properties, sources and size-resolved hygroscopicity of submicron black carbon-containing aerosols in urban Shanghai, Atmos. Chem. Phys., 22, 8073-8096, doi:10.5194/acp-22-8073-2022, 2022. [PDF]
[216] Li J., X. Hao, H. Liao*, X. Yue, H. Li, X. Long, and N. Li, Predominant type of dust storms that influences air quality over northern China and future projections, Earth's Future, 10, e2022EF002649, doi:10.1029/2022EF002649, 2022. [PDF]
[215] Gong C., Y. Wang, H. Liao*, P. Wang, J. Jin, and Z. Han, Future co-occurrences of hot days and ozone polluted days over China under scenarios of Shared Socioeconomic Pathways predicted through a machine learning approach, Earth's Future, 10, e2022EF002671, doi:10.1029/2022EF002671, 2022. [PDF]
[214] Lei Y., X. Yue, Z. Wang, H. Liao, L. Zhang, C. Tian, H. Zhou, J. Zhong, L. Guo, H. Che, and X. Zhang, Mitigating ozone damage to ecosystem productivity through sectoral and regional emission controls: a case study in the Yangtze River Delta, China, Environmental Research Letters, 17, 065008, doi:10.1088/1748-9326/ac6ff7, 2022. [PDF]
[213] Gao J., Y. Yang, H. Wang, P. Wang, H. Li, M. Li, L. Ren, X. Yue, and H. Liao, Fast climate responses to emission reductions in aerosol and ozone precursors in China during 2013–2017, Atmos. Chem. Phys., 22, 7131-7142, doi:10.5194/acp-22-7131-2022, 2022. [PDF]
[212] Ouyang H., X. Tang, R. Kumar, R. Zhang, G. Brasseur, B. Churchill, M. Alam, H. Kan, H. Liao, T. Zhu, E. Y. Y. Chan, R. Sokhi, J. Yuan, A. Baklanov, J. Chen, M. K. Patdu, Towards better and healthier air quality: Implementation of WHO 2021 global air quality guidelines in Asia, BAMS, E1696-E1703, doi:10.1175/BAMS-D-22-0040.1, 2022. [PDF]
[211] Jin J., M. Pang, S. Segers, W. Han, L. Fang, B. Li, H. Feng, H. Lin, and H. Liao*, Inverse modeling of the 2021 spring super dust storms in East Asia, Atmos. Chem. Phys., 22, 6393-6410, doi:10.5194/acp-22-6393-2022, 2022. [PDF]
[210] Qian J., H. Liao*, Y. Yang, K. Li, L. Chen, and J. Zhu, Meteorological influences on daily variation and trend of summertime surface ozone over years of 2015–2020: Quantification for cities in the Yangtze River Delta, Science of the Total Environment, 834, 155107, doi:10.1016/j.scitotenv.2022.155107, 2022. [PDF]
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[41] Yang Y., H. Liao*, and J. Li, Impacts of the East Asian summer monsoon on interannual variations of summertime surface-layer ozone concentrations over China, Atmos. Chem. Phys. , 14, 6867-6880, doi:10.5194/acp-14-6867-2014, 2014. [PDF]
[40] Lou S., H. Liao*, and B. Zhu, Impacts of aerosols on surface-layer ozone concentrations in China through heterogeneous reactions and changes in photolysis rates, Atmos. Environ., 85, 123-138, doi:10.1016/j.atmosenv.2013.12.004, 2014. [PDF]
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[38] Zhang D., H. Liao* and Y.S. Wang, Simulated spatial distribution and seasonal variation of atmospheric methane over China: Contributions from key sources, Adv. Atmos. Sci., 31(2), 283-292, doi:10.1007/s00376-013-3018-y, 2014. [PDF]
[37] Jiang H., H. Liao*, H. O. T. Pye, S. Wu, L. J. Mickley, J. H. Seinfeld, and X. Zhang, Projected effect of 2000–2050 changes in climate and emissions on aerosol levels in China and associated transboundary transport, Atmos. Chem. Phys., 13, 7937–7960, 2013. [PDF]
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[35] Yue X., H. Liao*, and J. Tang, Simulation of the direct radiative effect of mineral dust and sea salt aerosols in a doubled carbon dioxide climate, Atmos. Oceanic Sci. Lett., 6, 343-348, doi:10.3878/j.issn.1674-2834.12.0107, 2013. [PDF]
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[31] Yue X., H. Liao*, Climatic responses to the shortwave and longwave direct radiative effects of sea salt aerosol in present day and the last glacial maximum, Clim. Dyn., 39(12), 3019-3040, doi:10.1007/s00382-012-1312-5, 2012. [PDF]
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[27] Yue X., H. Wang, H. Liao, and D. Jiang, Simulation of the direct radiative effect of mineral dust aerosol on the climate at the Last Glacial Maximum, J. Clim, 24, 843-858, doi:10.1175/2010JCLI3827.1, 2011. [PDF]
[26] Jiang X., Z.-L. Yang, H. Liao, and C. Wiedinmyer, Sensitivity of biogenic organic aerosols to future climate change at regional scales: An online coupled simulation, Atmos. Environ., 44, 4891-4907, doi:10.1016/j.atmosenv.2010.08.032, 2010. [PDF]
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[24] Raes F., H. Liao, W.-T. Chen, and J. H. Seinfeld, Atmospheric chemistry-climate feedbacks, J. Geophys. Res., 115, D12121, doi:10.1029/2009JD013300, 2010. [PDF] (Chosen as JGR Editor's Highlight)
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[22] Zhang L., H. Liao*, and J. Li, Impacts of Asian summer monsoon on seasonal and interannual variations of aerosols over eastern China, J. Geophys. Res., 115, D00K05, doi:10.1029/2009JD012299, 2010. [PDF]
[21] Yue X., H. Wang, H. Liao, and K. Fan, Simulation of dust aerosol radiative feedback using the GMOD. Part II: dust-climate interactions, J. Geophys. Res., 115, D04201, doi:10.1029/2009JD012063, 2010. [PDF]
[20] Yue X., H. Wang, H. Liao, and K. Fan, The Direct Climatic Effect of Dust Aerosols in the NCAR Community Atmosphere Model Version 3 (CAM3), Adv. Atmos. Sci., 27(2), 230-242, doi:10.1007/s00376-009-8170-z, 2010. [PDF]
[19] Zhang L., H. Liao, and J. Li, Impact of the Southeast Asian summer monsoon strength on the outflow of aerosols from South Asia, Annales Geophysicae, 28, 277-287, 2010. [PDF]
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[17] Zhang Y., H. Liao*, K. Zhu, and Y. Yin, Role of black carbon-induced changes in snow albedo in predictions of temperature and precipitation during a snow storm, Atmos. Oceanic Sci. Lett., 2, 230-236, 2009. [PDF]
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中文期刊论文:

 

[28] 朱佳,冯子珈,陈磊,廖宏,温度修饰的臭氧短期暴露对我国当前及未来健康损害的影响, 科学通报, 接受待刊登, 2024。【PDF】
[27] 杜楠,陈磊,廖宏,朱佳,李柯, 夏季对流层臭氧辐射强迫对华北地区天气和空气质量的影响,环境科学, 44(7), doi:10.13227/j.hjkx.202208098, 2023。【PDF】
[26] 张丹瑜婷, 廖宏, 李柯, 代慧斌, 顾梓会, 大气国十条以来我国夏季大气OH浓度变化的数值 模拟,大气科学, 47(3), 713-724, doi:10.3878/j.issn.1006-9895.2112.21218, 2023。【PDF】
[25] 廖宏,周颖,代慧斌,宫成, 天气和气候条件对大气PM2.5和臭氧污染形成过程的影响,科技导报, 40(15):41-48, doi:10.3981/j.issn.1000-7857.2022.15.005, 2022。【PDF】
[24] 王叶,廖宏,2015-2050年南亚与东南亚输送对中国大气臭氧浓度的影响, 科学通报, 67:1-17, doi:10.1360/TB-2021-0707, 2022。【PDF】
[23] 廖宏,谢佩芙,IPCC AR6解读之短寿命气候强迫因子的气候及环境效应, 气候变化研究进展, 17(6), 685-690, doi:10.12006/j.issn.1673-1719.2021.162, 2021。【PDF】
[22] 廖宏,高瑜成,陈东林,代慧斌,杜楠,方力,亢灵,钱静,秦卓凡,王叶,谢佩芙,杨豪,张丹瑜婷,空气污染-气候相互作用:IPCC AR6的结论解读, 大气科学学报, 44(5), 658-666, doi:10.13878/j.cnki.dqkxxb.20210823011, 2021。【PDF】
[21] 秦卓凡,廖宏,陈磊,朱佳,钱静, 汾渭平原空气质量及气象要素对其日变化和年际变化的影响, 大气科学, 45(6), 1273-1291, doi:10.3878/j.issn.1006-9895.2101.20240, 2021。【PDF】
[20] 巢清尘,严中伟,孙颖,江志红,廖宏,贾根锁,蔡榕硕, 中国气候变化的科学新认知, 中国人口资源与 环境, 30(3), 1-9, doi:10.1262/cpre.20200303, 2020。【PDF】
[19] 乐旭,雷亚栋,周浩,刘竹,胡斯勒图,蔡兆男,林金泰,江志红,廖宏*, 新冠肺炎疫情期间中国人为碳排放和大气污染的变化, 大气科学学报, 43(2), 265-274, doi:10.13878/j.cnki.dqkxxb.20200408010, 2020。【PDF】
[18] 王体健, 高太长, 张宏昇, 葛茂发, 雷恒池, 张培昌, 张鹏, 陆春松, 刘超, 张华, 张强, 廖宏, 阚海东, 冯兆忠, 张义军, 郄秀书, 蔡旭晖, 李蒙蒙, 刘 磊, 佟胜睿, 新中国成立70年以来的中国大气科学研究: 大气物理与大气环境篇, 中国科学: 地球 科学, 49, doi: 10.1360/SSTe-2019-0134, 2019。【PDF】
[17] 唐颖潇,邱雨露,朱佳,陈磊,廖宏, 基于模式分析一次沙尘暴过程中沙尘表面非均相化学过 程对中国地区污染物浓度的影响, 气候与环境研究, 23(4),413-428, Doi: 10.3878/j.issn.1006-9585.2017.17028, 2018。【 PDF】
[16] 王东东,朱彬,江志红,廖宏,陈海山, 人为气溶胶对中国东部冬季风影响的模拟研究, 大气科学学报,40(4),541-552,doi:10.13878/j.cnki.dqkxxb.20160525001,2017。【PDF】
[15] 刘瑞金,廖宏,张天航,靳少非, 基于国际大气化学-气候模式比较计划模式数据评估未来气候变化对中国东部气溶胶浓度的影响,大气科学,41(4),739-751,doi:10.3878/j.issn.1006-9895.1612.16218,2017。【PDF】
[14] 冯琎,廖宏,冬春季东亚气溶胶流出通量年际变率的相关环流异常分析,大气科学,41(2), 251-262,doi:10.3878/j.issn.1006-9895.1607.16146, 2017。【PDF】
[13] 尚晶晶,廖宏,符瑜,杨青,夏季硫酸盐和黑碳气溶胶对云特性的影响,热带气象学报,33(4), 451-466, 2017。【PDF】
[12] 张天航,廖宏,常文渊,刘瑞金,基于国际大气化学-气候模式比较计划(ACCMIP)模式数据>评估中国沙尘气溶胶直接辐射强迫,大气科学,40(6), 1242-1260, doi:10.3878/j.issn.1006-9895.1512.15275,2016。【PDF】
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[8] 张小曳,廖宏,王芬娟, 对IPCC第五次评估报告气溶胶-云对气候变化影响与响应结论的解读, 气候变化研究进展,10(1), 37-39, doi:10.3969/j.issn.1673-1719.2014.01.008, 2014。【PDF】
[7] 廖宏,汤金平, A Train 系列卫星对大气的监测研究计划, 物理,7(39), 488-489, 2010。【PDF】
[6] 漏嗣佳,朱彬,廖宏, 中国地区臭氧前体物对地面臭氧的影响, 大气科学学报,33(4), 451-459, 2010。【PDF】
[5] 廖宏,朱懿旦,全球碳循环与中国百年气候变化,第四纪研究,30(3),1001-7410,2010。【PDF】
[4] 张兴赢,张鹏,廖宏,胡秀清,李元,张立军,戎志国,邱红,地基傅立叶红外高光谱遥感观测大气成分平台建设及其反演技术研究, 气象,35(1), 9-16,2009。【PDF】
[3] 王自发,庞成明,朱江,安俊岭,韩志伟,廖宏,大气环境数值模拟研究新进展,大气科学,32(4),987-995,2008。【PDF】
[2] 曾庆存,周广庆,浦一芬,陈文,李荣凤,廖宏,林朝晖,刘辉志,王必正,谢正辉,徐永福,薛峰,曾晓东,张凤,地球系统动力学模式及模拟研究,大气科学, 32(4), 653-690,2008。【PDF】
[1] 董敏,陈隆勋,廖宏,西太平洋暖池区海温异常对冬季环流影响的数值研究,海洋学报,16(3),39-49, 1994。【PDF】