يعرض 1 - 20 نتائج من 124 نتيجة بحث عن '"Gao, Nana"', وقت الاستعلام: 0.55s تنقيح النتائج
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    المساهمون: National Natural Science Foundation of China

    المصدر: CNS Neuroscience & Therapeutics ; volume 30, issue 2 ; ISSN 1755-5930 1755-5949

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    Alternate Title: 微孔卷曲碳包埋双金属氧化物中的电荷再分布促进高效硝酸根电还原合成氨 (Chinese)

    المصدر: Science China Materials; Feb2025, Vol. 68 Issue 2, p472-482, 11p

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    المؤلفون: Liu, Zhengyuan1 (AUTHOR), Gao, Nana1 (AUTHOR), Gong, Yaqiong1 (AUTHOR) gyq@nuc.edu.cn

    المصدر: International Journal of Hydrogen Energy. Jan2025, Vol. 99, p707-715. 9p.

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    جغرافية الموضوع: North China

    وصف الملف: 19 páginas; application/pdf

    Relation: Sustainability; 1. Bu, X.; Xie, Z.; Liu, J.; Wei, L.; Wang, X.; Chen, M.; Ren, H. Global PM2.5 attributable health burden from 1990 to 2017: Estimates from the Global Burden of disease study 2017. Environ. Res. 2021, 197, 111123. [CrossRef] [PubMed]; 2. Cheng, J.; Su, J.; Cui, T.; Li, X.; Dong, X.; Sun, F.; Yang, Y.; Tong, D.; Zheng, Y.; Li, Y.; et al. Dominant role of emission reduction in PM2.5 air quality improvement in Beijing during 2013–2017: A model-based decomposition analysis. Atmos. Chem. Phys. 2019, 19, 6125–6146. [CrossRef]; 3. Yan, D.; Lei, Y.; Shi, Y.; Zhu, Q.; Li, L.; Zhang, Z. Evolution of the spatiotemporal pattern of PM2.5 concentrations in China-a case study from the Beijing-Tianjin-Hebei region. Atmos. Environ. 2018, 183, 225–233. [CrossRef]; 4. Zeng, J.J.; Liu, T.; Feiock, R.; Li, F. The impacts of China’s provincial energy policies on major air pollutants: A spatial econometric analysis. Energy Policy 2019, 132, 392–403. [CrossRef]; 5. Xue, F.; Niu, H.; Hu, S.; Wu, C.; Zhang, C.; Gao, N.; Ren, X.; Li, S.; Hu, W.; Wang, J.; et al. Seasonal variations and source apportionment of carbonaceous aerosol in PM2.5 from a coal mining city in the North China Plain. Energy Explor. Exploit. 2021, 40, 834–851. [CrossRef]; 6. Song, X.; Jia, J.; Wu, F.; Niu, H.; Ma, Q.; Guo, B.; Shao, L.; Zhang, D. Local emissions and secondary pollutants cause severe PM2.5 elevation in urban air at the south edge of the North China Plain: Results from winter haze of 2017–2018 at a mega city. Sci. Total Environ. 2021, 802, 149630. [CrossRef]; 7. Chen, S.; Yang, J.; Yang, W.; Wang, C.; Bärnighausen, T. COVID-19 control in China during mass population movements at New Year. Lancet 2020, 395, 764–766. [CrossRef]; 8. Wang, Y.; Wen, Y.; Wang, Y.; Zhang, S.; Zhang, K.M.; Zheng, H.; Xing, J.; Wu, Y.; Hao, J. Four-month changes in air quality during and after the COVID-19 lockdown in six megacities in China. Environ. Sci. Technol. Lett. 2020, 7, 802–808. [CrossRef]; 9. Tian, H.; Liu, Y.; Li, Y.; Wu, C.H.; Chen, B.; Kraemer, M.U.G.; Li, B.; Cai, J.; Xu, B.; Yang, Q.; et al. An investigation of transmission control measures during the first 50 days of the COVID-19 epidemic in China. Science 2020, 368, 638–642. [CrossRef]; 11. Huang, X.; Ding, A.; Gao, J.; Zheng, B.; Zhou, D.; Qi, X.; Tang, R.; Wang, J.; Ren, C.; Nie, W.; et al. Enhanced secondary pollution offset reduction of primary emissions during COVID-19 lockdown in China. Natl. Sci. Rev. 2021, 8, nwaa137. [CrossRef]; 12. Zambrano-Monserrate, M.A.; Ruano, M.A.; Sanchez-Alcalde, L. Indirect effects of COVID-19 on the environment. Sci. Total Environ. 2020, 728, 138813. [CrossRef]; 13. Shi, X.; Brasseur, G.P. The response in air quality to the reduction of Chinese economic activities during the COVID-19 outbreak. Geophys. Res. Lett. 2020, 47, e2020GL088070. [CrossRef]; 14. Adam, M.G.; Tran, P.T.M.; Balasubramanian, R. Air quality changes in cities during the COVID-19 lockdown: A critical review. Atmos. Res. 2021, 264, 105823. [CrossRef]; 15. Lelieveld, J.; Evans, J.S.; Fnais, M.; Giannadaki, D.; Pozzer, A. The contribution of outdoor air pollution sources to premature mortality on a global scale. Nature 2015, 525, 367–371. [CrossRef]; 16. Rahman, M.M.; Paul, K.C.; Hossain, M.A.; Ali, G.G.M.N.; Rahman, M.S.; Thill, J.C. Machine learning on the COVID-19 pandemic, human mobility and air quality: A review. IEEE Access 2021, 9, 72420–72450. [CrossRef]; 17. Gamelas, C.; Abecasis, L.; Canha, N.; Almeida, S.M. The Impact of COVID-19 Confinement Measures on the Air Quality in an Urban-Industrial Area of Portugal. Atmosphere 2021, 12, 1097. [CrossRef]; 18. Ropkins, K.; Tate, J.E. Early observations on the impact of the COVID-19 lockdown on air quality trends across the UK. Sci. Total Environ. 2021, 754, 142374. [CrossRef]; 19. Wang, Q.; Li, S. Nonlinear impact of COVID-19 on pollutions—Evidence from Wuhan, New York, Milan, Madrid, Bandra, London, Tokyo and Mexico City. Sustain. Cities Soc. 2021, 65, 102629. [CrossRef]; 20. Kroll, J.H.; Heald, C.L.; Cappa, C.D.; Farmer, D.K.; Fry, J.L.; Murphy, J.G.; Steiner, A.L. The complex chemical effects of COVID-19 shutdowns on air quality. Nat. Chem. 2020, 12, 777–779. [CrossRef]; 21. He, G.; Pan, Y.; Tanaka, T. The short-term impacts of COVID-19 lockdown on urban air pollution in China. Nat. Sustain. 2020, 3, 1005–1011. [CrossRef]; 22. Lian, X.; Huang, J.; Huang, R.; Liu, C.; Wang, L.; Zhang, T. Impact of city lockdown on the air quality of COVID-19-hit of Wuhan city. Sci. Total Environ. 2020, 742, 140556. [CrossRef]; 23. Hu, X.; Liu, Q.; Fu, Q.; Xu, H.; Shen, Y.; Liu, D.; Wang, Y.; Jia, H.; Cheng, J. A high-resolution typical pollution source emission inventory and pollution source changes during the COVID-19 lockdown in a megacity, China. Environ. Sci. Pollut. Res. 2021, 28, 45344–45352. [CrossRef]; 24. Zhang, K.; de Leeuw, G.; Yang, Z.; Chen, X.; Jiao, J. The impacts of the COVID-19 lockdown on air quality in the Guanzhong Basin, China. Remote Sens. 2020, 12, 3042. [CrossRef]; 25. Wang, H.; Tan, Y.; Zhang, L.; Shen, L.; Zhao, T.; Dai, Q.; Guan, T.; Ke, Y.; Li, X. Characteristics of air quality in different climatic zones of China during the COVID-19 lockdown. Atmos. Pollut. Res. 2021, 12, 101247. [CrossRef]; 26. Pei, Z.; Han, G.; Ma, X.; Su, H.; Gong, W. Response of major air pollutants to COVID-19 lockdowns in China. Sci. Total Environ. 2020, 743, 140879. [CrossRef]; 27. Niu, H.; Wu, Z.; Xue, F.; Liu, Z.; Hu, W.; Wang, J.; Fan, J.; Lu, Y. Seasonal variations and risk assessment of heavy metals in PM from Handan, China. World J. Eng. 2021, 18, 886–897. [CrossRef]; 28. Polissar, A.V.; Hopke, P.K.; Paatero, P.; Kaufmann, Y.J.; Hall, D.K.; Bodhaine, B.A.; Dutton, E.G.; Harris, J.M. The aerosol at Barrow, Alaska: Long-term trends and source locations. Atmos. Environ. 1999, 33, 2441–2458. [CrossRef]; 29. Abbott, M.L.; Lin, C.J.; Martian, P.; Einerson, J.J. Atmospheric mercury near Salmon Falls Creek Reservoir in southern Idaho. Appl. Geochem. 2008, 23, 438–453. [CrossRef]; 30. Xu, X.; Akhtar, U. Identification of potential regional sources of atmospheric total gaseous mercury in Windsor, Ontario, Canada using hybrid receptor modeling. Atmos. Chem. Phys. 2010, 10, 7073–7083. [CrossRef]; 31. Cheng, M.D.; Lin, C.J. Receptor modeling for smoke of 1998 biomass burning in Central America. J. Geophys. Res. 2001, 106, 22871–22886. [CrossRef]; 32. Qiao, Z.; Wu, F.; Xu, X.; Yang, J.; Liu, L. Mechanism of spatiotemporal air quality response to meteorological parameters: A national-scale analysis in China. Sustainability 2019, 11, 3957. [CrossRef]; 33. Pateraki, S.; Asimakopoulos, D.N.; Flocas, H.A.; Maggos, T.; Vasilakos, C. The role of meteorology on different sized aerosol fractions (PM10, PM2.5, PM2.5-10). Sci. Total Environ. 2012, 419, 124–135. [CrossRef] [PubMed]; 34. Wang, Y.; Liu, C.; Wang, Q.; Qin, Q.; Ren, H.; Cao, J. Impacts of natural and socioeconomic factors on PM2.5 from 2014 to 2017. J. Environ. Manag. 2021, 284, 112071. [CrossRef]; 35. Hu, W.; Hu, M.; Hu, W.W.; Zheng, J.; Chen, C.; Wu, Y.; Guo, S. Seasonal variations in high time-resolved chemical compositions, sources, and evolution of atmospheric submicron aerosols in the megacity Beijing. Atmos. Chem. Phys. 2017, 17, 9979–10000. [CrossRef]; 36. Liu, F.; Zhang, G.; Lian, X.; Fu, Y.; Lin, Q.; Yang, Y.; Bi, X.; Wang, X.; Peng, P.; Sheng, G. Influence of meteorological parameters and oxidizing capacity on characteristics of airborne particulate amines in an urban area of the Pearl River Delta, China. Environ. Res. 2022, 212, 113212. [CrossRef]; 37. Zhang, Q.; Zheng, Y.; Tong, D.; Shao, M.; Wang, S.; Zhang, Y.; Xu, X.; Wang, J.; He, H.; Liu, W.; et al. Drivers of improved PM2.5 air quality in China from 2013 to 2017. Proc. Natl. Acad. Sci. USA 2019, 116, 24463–24469. [CrossRef]; 38. Zhang, X.; Xu, X.; Ding, Y.; Liu, Y.; Zhang, H.; Wang, Y.; Zhong, J. The impact of meteorological changes from 2013 to 2017 on PM2.5 mass reduction in key regions in China. Sci. China Earth Sci. 2019, 62, 1885–1902. [CrossRef]; 39. Xing, J.; Li, S.; Jiang, Y.; Wang, S.; Ding, D.; Dong, Z.; Zhu, Y.; Hao, J. Quantifying the emission changes and associated air quality impacts during the COVID-19 pandemic on the North China Plain: A response modeling study. Atmos. Chem. Phys. 2020, 20, 14347–14359. [CrossRef]; 40. Li, R.; Zhao, Y.; Fu, H.; Chen, J.; Peng, M.; Wang, C. Substantial changes in gaseous pollutants and chemical compositions in fine particles in the North China Plain during the COVID-19 lockdown period: Anthropogenic vs meteorological influences. Atmos. Chem. Phys. 2021, 21, 8677–8692. [CrossRef]; 41. Chu, B.; Zhang, S.; Liu, J.; Ma, Q.; He, H. Significant concurrent decrease in PM2.5 and NO2 concentrations in China during COVID-19 epidemic. J. Environ. Sci. 2021, 99, 346–353. [CrossRef]; 42. Yuan, Q.; Qi, B.; Hu, D.; Wang, J.; Zhang, J.; Yang, H.; Zhang, S.; Liu, L.; Xu, L.; Li, W. Spatiotemporal variations and reduction of air pollutants during the COVID-19 pandemic in a megacity of Yangtze River Delta in China. Sci. Total Environ. 2021, 751, 141820. [CrossRef]; 43. Ding, J.; Dai, Q.; Li, Y.; Han, S.; Zhang, Y.; Feng, Y. Impact of meteorological condition changes on air quality and particulate chemical composition during the COVID-19 lockdown. J. Environ. Sci. 2021, 109, 45–56. [CrossRef]; 44. Liu, L.; Zhang, J.; Du, R.; Teng, X.; Hu, R.; Yuan, Q.; Tang, S.; Ren, C.; Huang, X.; Xu, L.; et al. Chemistry of atmospheric fine particles during the COVID-19 pandemic in a megacity of eastern China. Geophys. Res. Lett. 2021, 48, 2020GL091611. [CrossRef]; 45. Xu, M.; Qin, Z.; Zhang, S. Integrated assessment of cleaning air policy in China: A case study for Beijing-Tianjin-Hebei region. J. Clean. Prod. 2021, 296, 126596. [CrossRef]; 46. Wu, Z.; Hu, T.; Hu, W.; Shao, L.; Sun, Y.; Xue, F.; Niu, H. Evolution in physico-chemical properties of fine particles emitted from residential coal combustion based on chamber experiment. Gondwana Res. 2022, 110, 252–263. [CrossRef]; 47. Hu, B.; Duan, J.; Liu, S.; Hu, J.; Zhang, M.; Kang, P.; Wang, C. Evaluation of the Effect of Fireworks Prohibition in the BeijingTianjin-Hebei and Surrounding Areas during the Spring Festival of 2018. Res. Environ. Sci. 2019, 32, 203–211.; 48. Xian, T.; Li, Z.; Wei, J. Changes in air pollution following the COVID-19 epidemic in Northern China: The role of meteorology. Front. Environ. Sci. 2021, 9, 654651. [CrossRef]; 49. He, Z.; Liu, P.; Zhao, X.; He, X.; Liu, J.; Mu, Y. Responses of surface O3 and PM2.5 trends to changes of anthropogenic emissions in summer over Beijing during 2014-2019: A study based on multiple linear regression and WRF-Chem. Sci. Total Environ. 2021, 807, 150792. [CrossRef]; 50. Wu, C.L.; Wang, H.W.; Cai, W.J.; He, H.D.; Ni, A.N.; Peng, Z.R. Impact of the COVID-19 lockdown on roadside traffic-related air pollution in Shanghai, China. Build. Environ. 2021, 194, 107718. [CrossRef]; 51. Liu, Y.; Wang, T.; Stavrakou, T.; Elguindi, N.; Doumbia, T.; Granier, C.; Bouarar, I.; Gaubert, B.; Brasseur, G.P. Diverse response of surface ozone to COVID-19 lockdown in China. Sci. Total Environ. 2021, 789, 147739. [CrossRef] [PubMed]; 52. Guo, X.; Wu, H.; Chen, D.; Ye, Z.; Shen, Y.; Liu, J.; Cheng, S. Estimation and prediction of pollutant emissions from agricultural and construction diesel machinery in the Beijing-Tianjin-Hebei (BTH) region, China. Environ. Pollut. 2020, 260, 113973. [CrossRef]; 53. Zhang, L.; An, J.; Liu, M.; Li, Z.; Liu, Y.; Tao, L.; Liu, X.; Zhang, F.; Zheng, D.; Gao, Q.; et al. Spatiotemporal variations and influencing factors of PM2.5 concentrations in Beijing, China. Environ. Pollut. 2020, 262, 114276. [CrossRef]; 54. Zheng, X.; Guo, B.; He, J.; Chen, S.X. Effects of corona virus disease-19 control measures on air quality in North China. Environmetrics 2021, 32, e2673. [CrossRef]; 55. Sokhi, R.S.; Singh, V.; Querol, X.; Finardi, S.; Targino, A.C.; Andrade, M.F.; Pavlovic, R.; Garland, R.M.; Massague, J.; Kong, S.; et al. A global observational analysis to understand changes in air quality during exceptionally low anthropogenic emission conditions. Environ. Int. 2021, 157, 106818. [CrossRef]; 56. Hassler, B.; McDonald, B.C.; Frost, G.J.; Borbon, A.; Carslaw, D.C.; Civerolo, K.; Granier, C.; Monks, P.S.; Monks, S.; Parrish, D.D.; et al. Analysis of long-term observations of NOx and CO in megacities and application to constraining emissions inventories. Geophys. Res. Lett. 2016, 43, 9920–9930. [CrossRef]; 57. Bai, Y.; Wang, Z.; Xie, F.; Cen, L.; Xie, Z.; Zhou, X.; He, J.; Lu, C. Changes in stoichiometric characteristics of ambient air pollutants pre-to post-COVID-19 in China. Environ. Res. 2022, 209, 112806. [CrossRef]; 58. Zhang, Q.; Jiang, X.; Tong, D.; Davis, S.J.; Zhao, H.; Geng, G.; Feng, T.; Zheng, B.; Lu, Z.; Streets, D.G.; et al. Transboundary health impacts of transported global air pollution and international trade. Nature 2017, 543, 705–709. [CrossRef]; 59. Ostro, B.; World Health Organization/Occupational Environmental Health Team. Outdoor Air Pollution: Assessing the Environmental Burden of Disease at National and Local Levels; World Health Organization: Geneva, Switzerland, 2004.; 60. Zha, H.; Wang, R.; Feng, X.; An, C.; Qian, J. Spatial characteristics of the PM2.5/PM10 ratio and its indicative significance regarding air pollution in Hebei Province, China. Environ. Monit. Assess. 2021, 193, 486. [CrossRef]; 61. Fu, S.; Guo, M.; Fan, L.; Deng, Q.; Han, D.; Wei, Y.; Luo, J.; Qin, G.; Cheng, J. Ozone pollution mitigation in guangxi (south China) driven by meteorology and anthropogenic emissions during the COVID-19 lockdown. Environ. Pollut. 2021, 272, 115927. [CrossRef]; 62. Chang, X.; Wang, S.; Zhao, B.; Xing, J.; Liu, X.; Wei, L.; Song, Y.; Wu, W.; Cai, S.; Zheng, H.; et al. Contributions of inter-city and regional transport to PM2.5 concentrations in the Beijing-Tianjin-Hebei region and its implications on regional joint air pollution control. Sci. Total Environ. 2019, 660, 1191–1200. [CrossRef] [PubMed]; 63. Zhang, Y.; Zhu, B.; Gao, J.; Kang, H.; Yang, P.; Wang, L.; Zhang, J. The Source Apportionment of Primary PM2.5 in an Aerosol Pollution Event over Beijing-Tianjin-Hebei Region using WRF-Chem, China. Aerosol Air Qual. Res. 2017, 17, 2966–2980. [CrossRef]; 64. Cheng, Y.; Zhu, B.; Wang, L.; Lu, W.; Kang, H.; Gao, J. Source apportionments of black carbon induced by local and regional transport in the atmospheric boundary layer of the Yangtze River Delta under stable weather conditions. Sci. Total Environ. 2022, 840, 156517. [CrossRef] [PubMed]; 19; 18; 14; Niu, H.; Zhang, C.; Hu, W.; Hu, T.; Wu, C.; Hu, S.; Silva, L.F.O.; Gao, N.; Bao, X.; Fan, J. Air Quality Changes during the COVID-19 Lockdown in an Industrial City in North China: Post-Pandemic Proposals for Air Quality Improvement. Sustainability 2022, 14, 11531. https://doi.org/10.3390/ su141811531; https://hdl.handle.net/11323/9626; Corporación Universidad de la Costa; REDICUC - Repositorio CUC; https://repositorio.cuc.edu.co/

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    المساهمون: 2020 Anhui Provincial University Cooperative Research and Public Health Collaborative Innovation Project of Anhui Provincial Department of Education, 2021 Anhui Provincial Medical and Health Key Specialty Construction Project, 2021 Anhui Provincial Key Project of Natural Science Research in Colleges and Universities, Research Fund of Anhui Institute of translational medicine

    المصدر: World Journal of Microbiology and Biotechnology ; volume 40, issue 4 ; ISSN 0959-3993 1573-0972

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    المساهمون: Plan for 100 Excellent Innovative Talents of Hebei Province, Tianjin Natural Science Foundation green channel project, Hebei Provincial Natural Science Foundation for Key Projects, National Natural Science Foundation of China, Hebei Provincial Natural Science Foundation for Distinguished Young Scholars

    المصدر: Energy Exploration & Exploitation ; volume 40, issue 2, page 834-851 ; ISSN 0144-5987 2048-4054

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