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Chem Soc,.2019.23(6):645 [15]Li N,et al.Does China's air pollution abatement policy matter?An assessment of the Beijing-Tianjin-Hebei region based on a multi-regional CGE model.Energ Policy,2019.127:213 [16]李国文,樊青娟,刘强,等.挥发性有机废气(VOCs)的污染控制技术.西安建筑科技大学学报,1998(04):3 Li G,Fan Q,Liu Q,et al.,Pollution control technology for Volatile organic waste gas(VOCs).J.Xi 'an Univ of Arch Tech,1998(04:3 [17刀杨利娴.我国工业源VOCs排放时空分布特征于控制策略研究[学位论文].广东:华南理工大学,2012 Yang L.Study on temporal-spatial characteristic and control strategy of industrial emission of volatile organic compounds in China.2012,South China University of Technology. 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Does China's air pollution abatement policy matter? An assessment of the Beijing-Tianjin-Hebei region based on a multi-regional CGE model. Energ Policy, 2019. 127: 213 [16] 李国文, 樊青娟, 刘强, 等. 挥发性有机废气 (VOCs)的污染控制技术. 西安建筑科技大学学报, 1998(04): 3 Li G, Fan Q, Liu Q, et al., Pollution control technology for Volatile organic waste gas (VOCs). J. Xi 'an Univ of Arch & Tech, 1998(04): 3 [17] 杨利娴. 我国工业源 VOCs 排放时空分布特征于控制策略研究[学位论文]. 广东: 华南理工大学, 2012 Yang L. Study on temporal-spatial characteristic and control strategy of industrial emission of volatile organic compounds in China. 2012, South China University of Technology. [18] Liotta L.F. Catalytic oxidation of volatile organic compounds on supported noble metals. Appl Catal B-Environ, 2010. 100(3-4): 403 [19] Zhang S, et al. Current advances of VOCs degradation by bioelectrochemical systems: A review. Chem Eng J, 2018. 334: 2625 [20] Simayi M, et al. Establishment of county-level emission inventory for industrial NMVOCs in China and spatial￾temporal characteristics for 2010–2016. Atmos Environ, 2019. 211: 194 [21] Li J, et al. Spatial-temporal variations and reduction potentials of volatile organic compound emissions from the coking industry in China. J Clean Prod, 2019. 214: 224 [22] Zhu L, D Shen and K.H. Luo. A critical review on VOCs adsorption by different porous materials: Species, mechanisms and modification methods. J Hazard Mater, 2020: 122102 [23] Kołodziej A. and J Łojewska. Optimization of structured catalyst carriers for VOC combustion. Catal Today, 2005. 105(3): 378 [24] Kamal M.S, S.A. Razzak and M.M. Hossain. Catalytic oxidation of volatile organic compounds (VOCs) – A review. Atmos Environ, 2016. 140: 117 [25] 李明哲, 黄正宏, 康飞宇. 挥发性有机物的控制技术进展. 化学工业与工程, 2015. 32(03): 2 Mingzhe, L. H. Zhenghong and K. Feiyu, Progress of Volatile Organic Compounds Control Technology. Chem Ind & Eng Pro, 2015. 32(03): 2 [26] Zou W, et al. Integrated adsorption and photocatalytic degradation of volatile organic compounds (VOCs) using carbon￾based nanocomposites: A critical review. Chemosphere, 2019. 218: 845 [27] Huai C, Chai, L. A bibliometric analysis on the performance and underlying dynamic patterns of water security research. Scientometrics, 108 (3): 1531 [28] Hirsch J.E. An index to quantify an individual's scientific research output. P Natl Acad Sci USA, 2005. 46(102): 16569 [29] Liebscher H. Economic solutions for compliance to the new European VOC Directive. Prog Org Coat, 2000. 40(1): 75 [30] 杨一鸣, 崔积山, 童莉, 等. 美国 VOCs 定义演变历程对我国 VOCs 环境管控的启示. 环境科学研究, 2017. 30(03): 368 Yang Y, et al. Evolution of the definition of volatile organic compounds in the United States and its implications for China. Res of Environ Sci, 2017. 30(03): 368 [31] Garfield E. The history and meaning of the journal impact factor. JAMA, 2006. 295(1): 90 [32] Wang Z, Y. Zhao and B. Wang, A bibliometric analysis of climate change adaptation based on massive research literature data. J Clean Prod, 2018. 199: 1072 [33] Castaño M.H, R. Molina and S. Moreno. Catalytic oxidation of VOCs on MnMgAlOx mixed oxides obtained by auto￾combustion. J Clean Prod, 2015. 398: 358 [34] Xu Z, et al. Biphasic Ag block assisting electron and energy transfer to facilitate photothermal catalytic oxidation of HCHO over manganese oxide. Mater Today Energy, 2019. 14: 100343. [35] Wang J, et al. Highly improved acetone oxidation activity over mesoporous hollow nanospherical MnxCo3−xO4 solid 录用稿件,非最终出版稿
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