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·1686·                            精细化工   FINE CHEMICALS                                 第 40 卷

            自清洁等性能也是光催化涂层未来的发展方向之一。                            [17]  VADIVEL S, RAJARAJAN G.  Effect of Mg doping on  structural,
                                                                   optical and photocatalytic  activity of  SnO 2 nanostructure  thin
            最后,将光催化技术与其他净化技术,如吸附、热催
                                                                   films[J]. Journal of Materials Science: Materials in Electronics, 2015,
            化技术、电催化技术、光等离子体技术和纳米摩擦发                                26: 3155-3162.
            电技术相结合,有望开发出人-机-环境一体化的新型                           [18]  ADIVEL S,  RAJARAJAN  G.  Effect  of W doping on structural,
                                                                   optical and photocatalytic  activity of  SnO 2 nanostructure  thin
            工程技术。此外,光催化材料的大规模生产和在基体                                films[J]. Journal of Materials Science: Materials in Electronics, 2015,
            上的自动化固定技术是实现商业化的前提,这需要各                                26: 7127-7133.
                                                               [19]  LI F Q, LAN  X F,  WANG  L L,  et al. An efficient photocatalyst
            学科研究者的通力合作。                                            coating strategy for intimately coupled photocatalysis and biodegradation
                                                                   (ICPB): Powder spraying method[J]. Chemical Engineering Journal,
            参考文献:                                                  2020, 383: 123092.
            [1]   WU Z B (吴忠标), ZHAO W R (赵伟荣). Indoor air pollution and   [20]  LIU M  L (刘马林). Application of fluidized bed chemical vapor
                                                                   deposition technology in advanced nuclear fuel preparation[J].
                 purification technology[M]. Beijing: Chemical Industry Press (化学  Chemical Industry and Engineering  Progress (化工进展), 2019,
                 工业出版社), 2005.
            [2]   NATH  R K, ZAIN M F M, JAMIL  M. An environment-friendly   38(4): 1646-1653.
                                                               [21]  SUN L Z, YUAN G W, GAO L B, et al. Chemical vapour deposition[J].
                 solution for indoor air purification by using renewable photocatalysts
                 in concrete: A review[J].  Renewable and Sustainable Energy   Nature Reviews Methods Primers, 2021, 5(1): 1-20.
                 Reviews, 2016, 62: 1184-1194.                 [22]  GUO H J (国洪建), JIA J H (贾均红), ZHANG Z Y (张振宇).
                                                                   Research progress and thinking of thermal spraying technology[J].
            [3]   RONG H Q (荣海琴),ZHENG J T (郑经堂), WANG M Z (王茂章).
                 The application environment of volatile organic platform and porous   Material Review (材料导报), 2013, 27(3): 38-40.
                 carbon material in its removal from indoor air[J].Science Advances   [23]  XIE D M (解东梅). Preparation and properties of screen printed nano
                                                                   TiO 2 thin film electrode[D]. Harbin: Harbin Engineering University
                 (科学进展), 1999, 7(6): 104-109.
            [4]   YAN K P, HUI H X, CUI M,  et al. Corona induced non-thermal   (哈尔滨工程大学), 2007.
                 plasmas: Fundamental study and industrial applications[J]. Journal of   [24]  KANG S, HOON  P D,  HWANG J.  Hierarchical ZnO nano-spines
                                                                   grown on a carbon fiber seed layer for efficient VOC removal and
                 Electrostatics, 1998, 44(1/2): 17-39.
            [5]   WU B J (吴碧君), LIU X Q (刘晓勤). Research progress of volatile   airborne virus and bacteria inactivation[J]. Journal of Hazardous
                 organic matter pollution control technology[J]. Electric Power   Materials, 2022, 424: 127262.
                                                               [25]  KENANAKIS G,  KATSARAKIS N.  ZnO nanowires on glass  via
                 Technology and Environmental Protection (电力科技与环保), 2005,
                 21(4): 39-42.                                     chemical routes: A prospective photocatalyst for indoors applications[J].
            [6]   ZHANG X Z (张秀芝), WANG J (王静), MA Y H (马宇辉), et al.   Journal of Environmental Chemical Engineering, 2014, 2(3): 1416-1422.
                                                               [26]  ELIASl M, UDDIN M N, SAHA J K, et al. A highly efficient and
                 Application of membrane  absorption in flue gas purification[J].
                 Phosphate & Compound Fertilizer (磷肥与复肥), 2016, 31(12): 33-38.   stable photocatalyst: N-doped ZnO/CNT composite thin film
            [7]   HE Q H (贺启环), LUO X (罗欣). Research progress of biological   synthesized  via  simple sol-gel drop coating method[J]. Molecules,
                                                                   2021, 26(5): 1470.
                 purification technology of waste gas[J]. Pollution Control Technology (污
                 染防治技术), 2003, 16(2): 23-26.                   [27]  BELER C, HINOJOSA M, BEDIA J, et al. Ag-coated heterostructures of
            [8]   MAHLAMBI M M, NGILA C J, MAMBA B B. Recent developments in   ZnO-TiO 2/delaminated montmorillonite as solar photocatalysts[J].
                                                                   Materials, 2017, 10(8): 960.
                 environmental photocatalytic degradation of organic pollutants: The   [28]  RANJBAR A, MOKHTARANI N. Post treatment of composting
                 case of titanium  dioxide nanoparticles-A review[J]. Journal of   leachate using ZnO nanoparticles immobilized on moving media[J].
                 Nanomaterials, 2015, 2015(10): 1-29.
                                                                   Applied Catalysis B: Environmental, 2018, 220: 211-221.
            [9]   ALLEN N S, EDGE M, SANDOVAL G, et al. Photocatalytic coating   [29]  VAN D V P, MATHIEU M, VANSANT E F,  et al. Molecular
                 for environmental applications[J]. Photochemistry and Photobiology,   dispersion of metal complexes within zeolitic solids: An alternative
                 2005, 81(2): 279-290.
                                                                   way to prepare supported MO x catalysts[J]. Journal  of Porous
            [10]  MENG F L (孟凡磊). Preparation and photocatalytic performance of   Materials, 1998, 5(3): 305-316.
                 GO-TiO 2 modified composite coatings[D]. Harbin:Northeast Forestry   [30]  WU M  Y, KWOK Y H, ZHANG Y  G,  et al. Synergetic effect of
                 University (东北林业大学), 2019.
                                                                   vacuum ultraviolet photolysis and ozone catalytic oxidation for
            [11]  TANG C N (汤春妮), MA X F (马喜峰), ZHANG G F (张桂锋), et al.   toluene degradation over MnO 2-rGO composite catalyst[J]. Chemical
                 Research progress of photocatalytic coatings[J]. Journal of Shaanxi   Engineering Science, 2021, 231: 116288.
                 Institute of Technology (陕西国防职教研究), 2020, 30(1): 37-40.
                                                               [31]  KAMAEI M, RASHEDI H, DASTGHEIB S M M, et al. Comparing
            [12]  YANG G J, PARK S J. Conventional and microwave hydrothermal   photocatalytic degradation  of  gaseous ethylbenzene using N-doped
                 synthesis and application of functional materials: A review[J]. Materials,   and pure TiO 2 nano-catalysts coated on glass beads under both UV
                 2019, 12(7): 1177.
                                                                   and visible light irradiation[J]. Catalysts, 2018, 8(10): 466.
            [13]  TSENG T K, LIN Y S, CHEN Y J, et al. A review of photocatalysts   [32]  KIM M, JUNG H, PARK E, et al. Performance of an air purifier
                 prepared by sol-gel method for VOCs removal[J]. International   using a MnO x/TiO 2 catalyst-coated filter for the decomposition of
                 Journal of Molecular Sciences, 2010, 11(6): 2336-2361.
                                                                   aldehydes, VOCs  and ozone: An experimental study in  an actual
            [14]  WANG X J (王晓静), BIAN C Q (边超群). Preparation of bismuth   smoking room[J]. Building and Environment, 2020, 186: 107247.
                 oxide coating by electrophoretic deposition[J]. Journal of Functional   [33]  SHAYEGAN  Z, HAGHIGHAT F, LEE C S. Surface fluorinated
                 Materials (功能材料), 2020, 51(6): 126-132.           Ce-doped TiO 2 nanostructure photocatalyst: A trap and remove
            [15]  HOFFMANN M  R, MARTIN S T, CHOI W,  et al. Environmental   strategy  to enhance  the VOC removal from indoor air environment[J].
                 applications of semiconductor photocatalysis[J]. Chemical Reviews,   Chemical Engineering Journal, 2020, 401: 125932.
                 1995, 95(1): 69-96.                           [34]  SUN M H,  WANG X G, CHEN Z Q,  et al. Stabilized oxygen
            [16]  PATIL G, KAJALE D, GAIKWAD V,  et al. Spray pyrolysis   vacancies over heterojunction for highly efficient and exceptionally
                 deposition of nanostructured tin oxide thin films[J]. International   durable VOCs photocatalytic degradation[J]. Applied Catalysis B:
                 Scholarly Research Notices, 2012, 2012(5): 275872.       Environmental, 2020, 273: 119061.
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