[1] KAMAL M S, RAZZAK S A, HOSSAIN M M, et al. Catalytic oxidation of volatile organic compounds (VOCs): A review[J]. Atmospheric Environment, 2016, 140: 117-134. doi: 10.1016/j.atmosenv.2016.05.031
[2] 羌宁, 史天哲, 缪海超. 挥发性有机物污染控制方案的运行费用效能比较[J]. 环境科学, 2020, 41(2): 638-646.
[3] 崔蕾. TiO2基微纳米复合光催化材料的合成与催化性能研究[D]. 长春: 吉林大学, 2020.
[4] 张健伟, 苑鹏, 王建桥, 等. Ce掺杂的CNTs-TiO2光催化剂制备及其NO氧化性能[J]. 环境工程学报, 2020, 14(7): 1852-1861. doi: 10.12030/j.cjee.201909119
[5] PHAM T D, LEE B K, et al. Selective removal of polar VOCs by novel photocatalytic activity of metals co-doped TiO2/PU under visible light[J]. Chemical Engineering Journal, 2017, 307: 63-73. doi: 10.1016/j.cej.2016.08.068
[6] QIN R, MENG F M, MUHAMMAD W K, et al. Fabrication and enhanced photocatalytic property of TiO2-ZnO composite photocatalysts[J]. Materials Letters, 2019, 240: 84-87. doi: 10.1016/j.matlet.2018.12.139
[7] WEI P, QIN D D, CHEN J Y, et al. Photocatalytic ozonation mechanism of gaseous n-hexane on MOx-TiO2-foam nickel composite (M=Cu, Mn, Ag): Unveiling the role of ˙OH and ˙O2[J]. Environmental Science: Nano, 2019, 6: 959-969.
[8] ZHANG Y, WU M, KWOK Y H, et al. In-situ synthesis of heterojunction TiO2/MnO2 nanostructure with excellent performance in vacuum ultraviolet photocatalytic oxidation of toluene[J]. Applied Catalysis B: Environmental, 2019, 259: 118034. doi: 10.1016/j.apcatb.2019.118034
[9] SIWINSKA K, KUBIAKA A, PIASECKI A, et al. TiO2-ZnO binary oxide systems: Comprehensive characterization and tests of photocatalytic activity[J]. Materials, 2018, 11(5): 841.
[10] MA Q, WANG H, ZHANG H, et al. Fabrication of MnO2/TiO2 nano-tube arrays photoelectrode and its enhanced visible light photoelectrocatalytic performance and mechanism[J]. Separation and Purification Technology, 2017, 189: 193-203. doi: 10.1016/j.seppur.2017.08.007
[11] BISWAS R K, KARMAKAR A K, KUMAR S L, et al. Recovery of manganese and zinc from spent Zn-C cell powder: Experimental design of leaching by sulfuric acid solution containing glucose[J]. Waste Management, 2016, 51: 174-181.
[12] 李明诗, 郭首义, 李浩东, 等. 废旧碱性锌锰电池综合回收钾、锌、锰[J]. 矿产保护与利用, 2020, 40(5): 134-137.
[13] 罗龙海, 闫艳梅, 袁建伟, 等. 废旧锌锰电池中锰和锌在硫酸/草酸溶液中的浸出行为[J]. 湿法冶金, 2019, 38(6): 469-472.
[14] XIN B, JIANG W, ASLAM H, et al. Bioleaching of zinc and manganese from spent Zn-Mn batteries and mechanism exploration[J]. Bioresource Technology, 2012, 106: 147-153. doi: 10.1016/j.biortech.2011.12.013
[15] QU J, FENG Y, ZHANG Q, et al. A new insight of recycling of spent Zn-Mn alkaline batteries: Synthesis of ZnxMn1-xO nanoparticles and solar light driven photocatalytic degradation of bisphenol A using them[J]. Journal of Alloys and Compounds, 2015, 622: 703-707.
[16] 高培, 沈伯雄, 赵忠. 回收废旧电池制备功能材料研究进展[J]. 化工进展, 2020, 39(10): 4185-4190.
[17] 白婷婷, 康静文, 肖坤儒, 等. 废旧锌锰电池回收制备菱形三氧化二锰及其对染料吸附性能研究[J]. 应用化工, 2018, 47(4): 741-745. doi: 10.3969/j.issn.1671-3206.2018.04.027
[18] 田炳阳. 废旧锌锰电池生物浸提液制备锰锌软磁材料的质量控制及关键技术[D]. 北京: 北京理工大学, 2018.
[19] 牛志睿, 李彤, 苏沉, 等. 废旧锌锰电池生物淋滤-水热法制备纳米锰锌铁氧体[J]. 环境科学学报, 2017, 37(9): 3356-3363.
[20] GALLEGOS M V, PELUSO M A, FINOCCHIO E, et al. Removal of VOCs by catalytic process. A study of MnZnO composites synthesized from waste alkaline and Zn/C batteries[J]. Chemical Engineering Journal, 2016, 313: 1099-1111.
[21] ZHANG X, LI H, YANG Y, et al. Facile synthesis of new efficient Cu/MnO2, catalysts from used battery for CO oxidation[J]. Journal of Environmental Chemical Engineering, 2017, 5: 5179-5186. doi: 10.1016/j.jece.2017.09.059
[22] LIU H, MA Y, CHEN J, et al. Highly efficient visible-light-driven photocatalytic degradation of VOCs by CO2-assisted synthesized mesoporous carbon confined mixed-phase TiO2 nanocomposites derived from MOFs[J]. Applied Catalysis B: Environmental, 2019, 250: 337-346. doi: 10.1016/j.apcatb.2019.03.054
[23] AEAUJO, EVANDO S, DACOSTA B P, et al. TiO2/ZnO hierarchical heteronanostructures: Synthesis, characterization and application as photocatalysts[J]. Journal of Environmental Chemical Engineering, 2016, 4(3): 2820-2829. doi: 10.1016/j.jece.2016.05.021
[24] QIAN X, REN M, YUE D, et al. Mesoporous TiO2 films coated on carbon foam based on waste polyurethane for enhanced photocatalytic oxidation of VOCs[J]. Applied Catalysis B: Environmental, 2017, 212: 1-6. doi: 10.1016/j.apcatb.2017.04.059
[25] NEVAREZ M M, KOBYLANSKI M, PAWE M, et al. Self-organized TiO2–MnO2 nanotube arrays for efficient photocatalytic degradation of toluene[J]. Molecules, 2017, 22(4): 564-577. doi: 10.3390/molecules22040564
[26] ZHANG J H, HUA Y, QIN J X, et al. TiO2-UiO-66-NH2 nanocomposites as efficient photocatalysts for the oxidation of VOCs[J]. Chemical Engineering Journal, 2020, 385: 123814. doi: 10.1016/j.cej.2019.123814
[27] RAO Z P, SHI G S, WANG Z, et al. Photocatalytic degradation of gaseous VOCs over Tm3+-TiO2: Revealing the activity enhancement mechanism and different reaction paths[J]. Chemical Engineering Journal, 2020, 395: 125078.
[28] MAMAGHANI A H, HAGHIGHAT F, LEE C S, et al. Photocatalytic oxidation of MEK over hierarchical TiO2 catalysts: Effect of photocatalyst features and operating conditions[J]. Applied Catalysis B:Environmental, 2019, 251: 1-16. doi: 10.1016/j.apcatb.2019.03.057
[29] HENDERSON M A. A surface science perspective on TiO2 photocatalysis[J]. Surface Science Reports, 2011, 66: 185-297. doi: 10.1016/j.surfrep.2011.01.001
[30] LIN Y T, WENG C H, HSU H J, et al. Effect of oxygen, moisture, and temperature on the photo oxidation of ethylene on N-doped TiO2 catalyst[J]. Separation and Purification Technology, 2014, 134: 117-125. doi: 10.1016/j.seppur.2014.07.039