胡振华, 于 萍, 罗运柏, 等. 突发性水体敌百虫污染的应急处理研究[J]. 环境科学与技术, 2012, 35(1):76-79. HU Zhen-hua, YU Ping, LUO Yun-bai, et al. Simulated emergency treatment of water pollution by dipterex[J]. Environmental Science & Technology, 2012, 35(1):76-79.
[2]
占绣萍. 浅谈农药残留与环境污染物治理研究进展[J]. 世界农药, 2013, 35(5):39-41. ZHAN Xiu-ping. Research on pesticide residues and environmental pollutions control[J]. World Pesticides, 2013, 35(5):39-41.
[3]
徐 辉. 环境中有机磷农药残留检测和降解技术及发展方向[J]. 世界农药, 2009, 31(1):40-41. XU Hui. Residue detection and degradation of oganophosphorous pesticides in the environment[J]. World Pesticides, 2009, 31(1):40-41.
[4]
李 荣, 贾开志, 蒋建东, 等. 敌敌畏、敌百虫高效降解菌株DDB-1的分离鉴定及降解特性研究[J]. 农业环境科学学报, 2007, 26(2):554-558. LI Rong, JIA Kai-zhi, JIANG Jian-dong, et al. Isolation and identification of a bacterium DDB-1 capable of degrading dichlorvos and trichlorfon simultaneously and its degrading characteristics[J]. Journal of Agro-Environment Science, 2007, 26(2):554-558.
[5]
Feng C G, Shang H R, Liu X. Photocatalysis of dinitrotoluene decomposition by H3PW12O40/TiO2 and H4SiW12O40/TiO2 prepared by a modified sol-gel synthesis and solvothermal treatment method[J]. Chinese Journal of Catalysis, 2014, 35(2):168-174.
[6]
俞如越, 姚伯龙, 许允生. 负载型二氧化钛的制备与性能结构研究[J]. 涂料工业, 2013, 43(1):56-58. YU Ru-yue, YAO Bo-long, XU Yun-sheng. Preparation of the load type TiO2 and relation between performance and structure[J]. Paint & Coatings Industry, 2013, 43(1):56-58.
[7]
张海洋, 朱丽珺, 李雪银, 等. Ag掺杂ZnO颗粒的制备与光催化性能的动力学分析[C]. 功能材料, 2014:207-213. ZHANG Hai-yang, ZHU Li-jun, LI Xue-yin, et al. Preparation of Ag/ZnO and kinetic analysis of its photocatalytic properties[C]. Journal of Functional Materials, 2014:207-213.
[8]
Qian J C, Chen Z X, Zhu L J. Preparation and photocatalytic property of zinc oxide nanoparticle[J]. Advanced Materials Research, 2013, 800:276-279.
[9]
胡基业, 刘晓钰, 王 彬, 等. 制备方法对Ni/ZnO催化丙三醇重整-氢解性能的影响[J]. 催化学报, 2012, 33(8):1266-1275. HU Ji-ye, LIU Xiao-yu, WANG Bin, et al. Reforming and hydrogenolysis of glycerol over Ni/ZnO catalysts prepared by different methods[J]. Chinese Journal of Catalysis, 2012, 33(8):1266-1275.
[10]
Song L M, Zhang S J, Wu X Q, et al. Controllable synthesis of hexagonal, bullet-like ZnO microstructures and nanorod arrays and their photocatalytic property[J]. Industrial & Engineering Chemistry Research, 2012, 51:4922-4926.
[11]
李慧泉, 许波连, 范以宁, 等. 纳米金红石TiO2光催化剂的水解合成及其性能[J]. 光谱学与光谱分析, 2013, 33(3):628-631. LI Hui-quan, XU Bo-lian, FAN Yi-ning, et al. Synthesis and properties of nano-rutile TiO2 photocatalysts[J]. Spectroscopy and Spectral Analysis, 2013, 33(3):628-631.
[12]
Li Z, Xiong Y, Xie Y. Selected-control synthesis of ZnO nanowires and nanorods via a PEG-assisted route[J]. Inorganic Chemistry, 2003, 42(18):8105-8109.
[13]
Hariharan C. Photocatalytic degradation of organic contaminants in water by ZnO nanoparticles:Revisited[J]. Applied Catalysis A, 2006, 304:65-82.
[14]
侯 珍, 陈 卓, 沈肇怡, 等. 纳米氧化锌对土壤微生物酶活性的影响[J]. 农业环境科学学报, 2014, 33(6):1153-1158. HOU Zhen, CHEN Zhuo, SHEN Zhao-yi, et al. Effects of zinc oxide nanoparticles on enzyme activities of soil microorganisms[J]. Journal of Agro-Environment Science, 2014, 33(6):1153-1158.
[15]
赵硕伟. ZnO纳米粒子光催化降解失效农药草甘膦的研究[J]. 农业环境科学学报, 2012, 31(1):54-59. ZHAO Shuo-wei. Study on the photocatalytic degradation of failure glyphosate pesticide by ZnO nanoparticle[J]. Journal of Agro-Environment Science, 2012, 31(1):54-59.
[16]
Elamin N, Elsanousi A. Synthesis of ZnO nanostructures and their photocatalytic activity[J]. Applied Industrial Science, 2013(1):32-35.
[17]
葛湘锋, 徐明芳, 骆育敏, 等. 光催化降解敌百虫农药废水的影响因素分析[J]. 生态科学, 2004, 23(2):124-127. GE Xiang-feng, XU Ming-fang, LUO Yu-min, et al. Analysis of factors influencing the photocatalytic degradation of trichlorfon[J]. Ecological Science, 2004, 23(2):124-127.
[18]
马永明, 张敏卿, 余国琮, 等. 水中溶解有机物TiO2-UV-O2光催化氧化动力学研究[J]. 化工进展, 2002, 21(2):112-115. MA Yong-ming, ZHANG Min-qing, YU Guo-cong, et al. Kinetics of photocatalytic oxidation of organic compounds dissolved in water with TiO2-UV-O2[J]. Chemical Industry and Engineering Progress, 2002, 21(2):112-115.
[19]
陈晓国, 潘新朋, 杨红刚, 等. 不同光源下TiO2膜对MC-RR光催化降解的比较研究[J]. 农业环境科学学报, 2005, 24(1):46-49. CHEN Xiao-guo, PAN Xin-peng, YANG Hong-gang, et al. Comparison of various lights in photocatalytic degradation of microcystins(MC-RR) by TiO2 Film[J]. Journal of Agro-Environment Science, 2005, 24(1):46-49.
[20]
蒋裕平. 不同分散条件和pH值对TiO2悬浊液性能影响研究[J]. 环境科学与管理, 2014, 39(4):137-140. JIANG Yu-ping. Influence of different dispersion conditions and pH on stability of TiO2 suspension[J]. Environmental Science and Management, 2014, 39(4):137-140.
[21]
杜利霞, 吴志娇, 吴 谦, 等. 花状TiO2分级结构的可控合成与其光催化性能[J]. 催化学报, 2013, 34(4):808-814.DU Li-xia, WU Zhi-jiao, WU Qian, et al. Controllable synthesis and photocatalytic properties of hierarchical flower-like TiO2 nanostructure[J]. Chinese Journal of Catalysis, 2013, 34(4):808-814.