[1] 张宇峰, 滕洁, 张雪英, 等. 印染废水处理技术的研究进展. 工业水处理,2003, 23(4): 23-27 ZHANG Yufeng, TENG Jie, ZHANG Xueying, et al. Progress of the researches on dyeing wastewater treatment techniques. Industrial Water Treatment, 2003, 23(4): 23-27(in Chinese)
[2] 钟恒, 曹文彪, 熊重铎, 等. 铈离子光催化降解茜素绿的性能和机理. 环境工程学报, 2014,8(2): 448-452 ZHNG Heng, CAO Wenbian, XIONG Zhongduo, et al. Activity and mechanism of photocatalytic degradaion of Alizan Green by cerium ions. Chinese Journal of Environmental Engineering, 2014,8(2): 448-452(in Chinese)
[3] LUO M., LYU L., DENG G., et al. The mechanism of bound hydroxyl radical formation and degradation pathway of Acid Orange II in Fenton-like Co2+-HCO3- system. Applied Catalysis A: Genera, 2014, 469: 198-205
[4] KHAN J. A., HE X, KHAN H. M., et al. Oxidative degradation of atrazine in aqueous solution by UV/H2O2/Fe2+, UV/S2O82-/Fe2+ and UV/HSO5-/Fe2+ processes: A comparative study. Chemical Engineering Journal, 2013, 218: 376-383
[5] NFODZO P., CHOI H. Triclosan decomposition by sulfate radicals: Effects of oxidant and metal doses. Chemical Engineering Journal, 2011, 174(2/3): 629-634
[6] ZHANG J., SHAO X., SHI C., et al. Decolorization of Acid Orange 7 with peroxymonosulfate oxidation catalyzed by granular activated carbon. Chemical Engineering Journal, 2013, 232: 259-265
[7] CHEN X., CHEN J., QIAO X., et al. Performance of nano-Co3O4/peroxymonosulfate system: Kinetics and mechanism study using Acid Orange 7 as a model compound. Applied Catalysis B:Environmental, 2008, 80(1/2): 116-121
[8] SHI P., SU R., ZHU S., et al. Supported cobalt oxide on graphene oxide: Highly efficient catalysts for the removal of Orange II from water. Journal of Hazardous Materials, 2012, 229: 331-339
[9] JI F., LI C., WE Xi. Efficient performance of porous Fe2O3 in heterogeneous activation of peroxymonosulfate for decolorization of Rhodamine B. Chemical Engineering Journal, 2013, 231: 434-440
[10] LIU J., ZHAO Z., SHAO P., et al. Activation of peroxymonosulfate with magnetic Fe3O4-MnO2 core-shell nanocomposites for 4-chlorophenol degradation. Chemical Engineering Journal, 2015, 262: 854-861
[11] ZHANG T., ZHU H., CROU J. P. Production of sulfate radical from peroxymonosulfate induced by a magnetically separable CuFe2O4 spinel in water: Efficiency, stability, and mechanism. Environmental Science & Technology, 2013,47(6): 2784-2791
[12] SAPUTRA E., MUHAMMAD S., SUN H., et al. Manganese oxides at different oxidation states for heterogeneous activation of peroxymonosulfate for phenol degradation in aqueous solutions. Applied Catalysis B:Environmental, 2013, 142-143: 729-735
[13] CHEN X., SHEN Y., SUIB S. L., et al. Catalytic decomposition of 2-propanol over different metal-cation-doped OMS-2 materials. Journal of Catalysis, 2001, 197(2): 292-302
[14] KUMAR R., SITHAMBARAM S., SUIB S. L. Cyclohexane oxidation catalyzed by manganese oxide octahedral molecular sieves: Effect of acidity of the catalyst. Journal of Catalysis, 2009, 262(2): 304-313
[15] YANG Y., HUANG J., ZHANG S., et al. Catalytic removal of gaseous HCBz on Cu doped OMS: Effect of Cu location on catalytic performance. Applied Catalysis B: Environmental, 2014, 150: 167-178
[16] 刘雪松,鲁继青,王晓霞,等.OMS-2的制备及其负载PdO对CO氧化的催化活性. 催化学报, 2010, 3(2): 181-185 LIU Xuesong, LU Jiqing, WANG Xiaoxia, et al. Preparation of manganese oxide octahedral molecular sieve and catalytic activity of its supported PdO for CO oxidation. Chinese Journal of Catalysis, 2010, 3(2): 181-185(in Chinese)
[17] LUO S., DUAN L., SUN B., et al. Manganese oxide octahedral molecular sieve (OMS-2) as an effective catalyst for degradation of organic dyes in aqueous solutions in the presence of peroxymonosulfate. Applied Catalysis B:Environmental, 2015, 164: 92-99
[18] DUAN L., SUN B., WEI M., et al. Catalytic degradation of Acid Orange 7 by manganese oxide octahedral molecular sieves with peroxymonosulfate under visible light irradiation. Journal of Hazardous Materials, 2015, 285: 356-365
[19] 王燕彩, 刘昕, 宁平, 等. 制备方法对氧化锰八面体分子筛的NH3选择性催化还原NOx性能的影响. 燃料化学学报, 2014, 42(11): 1357-136 WANG Yancai, LIU Xin, NING Ping, et al. Effect of preparation methods on selective catalytic reduction of NOx with NH3 over manganese oxide octahedral molecular sieves. Journal of Fuel Chemistry and Technology, 2014, 42(11): 1357-136
[20] DING Y., SHEN X., SITHAMBARAM S., et al. Synthesis and catalytic activity of cryptomelane-type manganese dioxide nanomaterials produced by a novel solvent-free method. Chemistry of Materials, 2006, 17(21): 5382-5389
[21] 余林, 孙明, 余坚, 等. 锰八面体分子筛的合成、表征及其对二甲醚燃烧的催化性能. 催化学报, 2008, 29(11): 1127-1132 YU Lin, SUN Ming, YU Jian, et al. Synthesis and characterization of manganese oxide octahedral molecular sieve catalyt for DME combustion. Chinese Journal of Catalysis, 2008, 29(11): 1127-1132(in Chinese)