1 | 肖鹏飞, 姜思佳. 活化过硫酸盐氧化法修复有机污染土壤的研究进展[J]. 化工进展, 2018, 37(12): 4862-4873. | 1 | XIAO Pengfei, JIANG Sijia. Research progress in remediation of organic contaminated soil by activated persulfate oxidation[J]. Chemical Industry and Engineering Progress, 2018, 37(12): 4862-4873. | 2 | 黄智辉, 纪志永, 陈希, 等. 过硫酸盐高级氧化降解水体中有机污染物研究进展[J]. 化工进展, 2019, 38(5): 2461-2470. | 2 | HUANG Zhihui, JI Zhiyong, CHEN Xi, et al. Degradation of organic pollutants in water by persulfate advanced oxidation[J]. Chemical Industry and Engineering Progress, 2019, 38(5): 2461-2470. | 3 | 陈一萍, 夏管商, 郑朝洪, 等. CNTs/PMS高级氧化体系去除水中的环丙沙星[J]. 化工进展, 2019, 38(4): 2037-2045. | 3 | CHEN Yiping, XIA Guanshang, ZHENG Chaohong, et al. Degradation of ciprofloxacin by advanced oxidation process with carbon nanotubes/peroxymonosulfate[J]. Chemical Industry and Engineering Progress, 2019, 38(4): 2037-2045. | 4 | 高焕方, 龙飞, 曹园城, 等. 新型过硫酸盐活化技术降解有机污染物的研究进展[J]. 环境工程学报, 2015, 9(12): 5659-5664. | 4 | GAO Huanfang, LONG Fei, CAO Yuancheng, et al. Advances in degradation of organic pollutants by novel persulfate activated technology[J]. Chinese Journal of Environmental Engineering, 2015, 9(12): 5659-5664. | 5 | 杨世迎, 张翱, 任腾飞, 等. 炭基材料催化过氧化物降解水中有机污染物: 表面作用机制[J]. 化学进展, 2017, 29(5): 539-552. | 5 | YANG Shiying, ZHANG Ao, REN Tengfei, et al. Surface mechanism of carbon-based materials for catalyzing peroxide degradation of organic pollutant[J]. Progress in Chemistry, 2017, 29(5): 539-552. | 6 | MATZEK L W, CARTER K E. Activated persulfate for organic chemical degradation: a review[J]. Chemosphere, 2016, 151: 178-188. | 7 | YANG Shiying, LI Lei, XIAO Tuo, et al. Promoting effect of ammonia modification on activated carbon catalyzed peroxymonosulfate oxidation[J]. Separation and Purification Technology, 2016, 160: 81-88. | 8 | LIANG Chenju, LIN Yating, SHIN Wuhang. Persulfate regeneration of trichloroethylene spent activated carbon[J]. Journal of Hazardous Materials, 2009, 168: 187-192. | 9 | ZHANG Jun, SHAO Xueting, SHI Chao, et al. Decolorization of Acid Orange 7 with peroxymonosulfate oxidation catalyzed by granular activated carbon[J]. Chemical Engineering Journal, 2013, 232: 259-265. | 10 | 杨鑫, 杨世迎, 王雷雷, 等. 活性炭催化过二硫酸盐降解水中AO7[J]. 环境科学, 2011, 32(7): 1960-1966. | 10 | YANG Xin, YANG Shiying, WANG Leilei, et al. Activated carbon catalyzed persulfate oxidation of azo dye Acid Orange 7 in aqueous solution[J]. Environmental Science, 2011, 32(7): 1960-1966. | 11 | 杨世迎, 邵雪停, 韩强, 等. 活性炭/过一硫酸盐降解水中金橙Ⅱ: 活性炭的循环利用[J]. 环境化学, 2012, 31(5): 692-696. | 11 | YANG Shiying, SHAO Xueting, HAN Qiang, et al. Granular activated carbon (GAC) reuse in the degradation of Acid Orange 7 by GAC catalyzed peroxymonosulfate oxidation[J]. Environmental Chemistry, 2012, 31(5): 692-696. | 12 | LEE Y, LO S, KUO J, et al. Promoted degradation of perfluorooctanic acid by persulfate when adding activated carbon[J]. Journal of Hazardous Materials, 2013, 261: 463-469. | 13 | 史宸菲, 薛瑞杰, 李雨濛, 等. 不同活性炭活化过硫酸盐的效能及机理的规律研究[J]. 环境科学学报, 2018, 38(4): 1501-1508. | 13 | SHI Chenfei, XUE Ruijie, LI Yumeng, et al. Efficiency and mechanism of persulfate activation using different activated carbons[J]. Acta Scientiae Circumstantiae, 2018, 38(4): 1501-1508. | 14 | 马国峰, 高美玉, 贺春林. 活性炭活化过硫酸钠降解罗丹明B的规律研究[J]. 沈阳大学学报(自然科学版), 2018, 30(5): 345-349. | 14 | MA Guofeng, GAO Meiyu, HE Chunlin. Decolorization properties of RhB by sodium persulfate activated with activated carbon[J]. Journal of Shenyang University (Natural Science), 2018, 30(5): 345-349. | 15 | 程爱华, 邵新岚, 王倩. 活性炭活化过硫酸盐处理含酚废水的实验研究[J]. 科学技术与工程, 2017, 17(35): 347-351. | 15 | CHENG Aihua, SHAO Xinlan, WANG Qian. Remove of phenol by activated carbon catalyzeper-sulfate system[J]. Science Technology and Engineering, 2017, 17(35): 347-351. | 16 | 房聪, 房烽, 张黎明, 等. 秸秆活性炭活化过一硫酸盐降解酸性橙7[J]. 环境科学学报, 2018, 38(1): 242-250. | 16 | FANG Cong, FANG Feng, ZHANG Liming, et al. Degradation of Acid Orange 7 by peroxymonosulfate activated by straw activated carbon[J]. Acta Scientiae Circumstantiae, 2018, 38(1): 242-250. | 17 | 杨梅梅, 周少奇, 刘聃, 等. 活性炭催化过硫酸钠降解金橙G动力学[J]. 环境科学, 2013, 34(3): 962-967. | 17 | YANG Meimei, ZHOU Shaoqi, LIU Dan, et al. Degradation kinetics of activated carbon catalyzed persulfate oxidation Orange G[J]. Environmental Science, 2013, 34(3): 692-697. | 18 | FOROUZESH M, EBADI A, AGHAEINEJAD-MEYBODI A. Degradation of metronidazole antibiotic in aqueous medium using activated carbon as a persulfate activator[J]. Separation and Purification Technology, 2019, 210: 145-151. | 19 | TAG A T, DUMAN G, UCAR S, et al. Effects of feedstock type and pyrolysis temperature on potential applications of biochar[J]. Journal of Analytical and Applied Pyrolysis, 2016, 120: 200-206. | 20 | WANG Jia, LIAO Zhuwei, IFTHIKAR J, et al. Treatment of refractory contaminants by sludge-derived biochar/persulfate system via both adsorption and advanced oxidation process[J]. Chemosphere, 2017, 185: 754-763. | 21 | WANG Xiaopeng, GU Lin, ZHU Pin, et al. Pyrolytic temperature dependent conversion of sewage sludge to carbon catalyst and their performance in persulfate degradation of 2-naphthol[J]. Chemical Engineering Journal, 2017, 324: 203-215. | 22 | WANG Shizong, WANG Jianlong. Activation of peroxymonosulfate by sludge-derived biochar for the degradation of triclosan in water and wastewater[J]. Chemical Engineering Journal, 2019, 356: 350-358. | 23 | YIN Renli, GUO Wanqiang, WANG Huazhe, et al. Singlet oxygen-dominated peroxydisulfate activation by sludge-derived biochar for sulfamethoxazole degradation through a nonradical oxidation pathway: performance and mechanism[J]. Chemical Engineering Journal, 2019, 357: 589-599. | 24 | HUANG Baocheng, JIANG Jun, HUANG Guixiang, et al. Sludge biochar-based catalysts for improved pollutant degradation by activating peroxymonosulfate[J]. Journal of Materials Chemistry A, 2018, 6: 8978-8985. | 25 | WU Yao, GUO Jing, HAN Yijie, et al. Insights into the mechanism of persulfate activated by rice straw biochar for the degradation of aniline[J]. Chemosphere, 2018, 200: 373-379. | 26 | 史宸菲, 贾淑敏, 李雨濛, 等. 水稻秸秆生物炭-过硫酸盐去除水中p-硝基酚[J]. 化工环保, 2017, 37(6): 632-637. | 26 | SHI Chenfei, JIA Shumin, LI Yumeng, et al. Degradation of p-nitrophenol using rice straw-based biochar and persulfate[J]. Environmental Protection of Chemical Industry, 2018, 38(11): 4166-4172. | 27 | 姚淑华, 马锡春, 李士凤. 秸秆生物炭活化过硫酸盐氧化降解苯酚[J]. 中国环境科学, 2018, 38(11): 4166-4172. | 27 | YAO Shuhua, MA Xichun, LI Shifeng. Straw biochar activated persulfate oxidation and degradation of phenol[J]. China Environmental Science, 2018, 38(11): 4166-4172. | 28 | WANG Bo, LI Yanni, WANG Li. Metal-free activation of persulfates by corn stalk biochar for the degradation of antibiotic norfloxacin: activation factors and degradation mechanism[J]. Chemosphere, 2019, 237: 124454. | 29 | 刘娜, 王柳, 邱华, 等. 生物炭催化过硫酸盐脱色偶氮染料金橙Ⅱ[J]. 吉林大学学报(地球科学版), 2014, 44(6): 2000-2009. | 29 | LIU Na, WANG Liu, QIU Hua, et al. Biochar catalyzed persulfate decoloration of azo dye Acid Orange 7[J]. Journal of Jilin University(Earth Science Edition), 2014, 44(6): 2000-2009. | 30 | HE Juan, XIAO Yao, TANG Jingchun, et al. Persulfate activation with sawdust biochar in aqueous solution by enhanced electron donor-transfer effect[J]. Science of the Total Environment, 2019, 690: 768-777. | 31 | OUYANG Da, CHEN Yun, YAN Jingchun, et al. Activation mechanism of peroxymonosulfate by biochar for catalytic degradation of 1,4-dioxane: important role of biochar defect structures[J]. Chemical Engineering Journal, 2019, 370: 614-624. | 32 | 史宸菲, 李雨濛, 冯瑞杰, 等. 蓝藻生物炭的制备及对过硫酸盐的活化效能[J]. 生态与农村环境学报, 2017, 33(12): 1140-1145. | 32 | SHI Chenfei, LI Yumeng, FENG Ruijie, et al. Preparation of biochar from cyanobacteria and function of the biochar for persulfate activation[J]. Journal of Ecology and Rural Environment, 2017, 33(12): 1140-1145. | 33 | Shihhsin HO, CHEN Yidi, LI Ruixiang, et al. N-doped graphitic biochars from C-phycocyanin extracted Spirulina residue for catalytic persulfate activation toward nonradical disinfection and organic oxidation[J]. Water Research, 2019, 159: 77-86. | 34 | LIANG Jun, XU Xiaoyun, ZAMAN W Q, et al. Different mechanisms between biochar and activated carbon for the persulfate catalytic degradation of sulfamethoxazole: roles of radicals in solution or solid phase[J]. Chemical Engineering Journal, 2019, 375: 121908. | 35 | SHI Chenfei, LI Yumeng, FENG Haiyao, et al. Removal of p-nitrophenol using persulfate activated by biochars prepared from different biomass materials[J]. Chemical Research in Chinese Universities, 2018, 34: 39-43. | 36 | KEMMOU L, FRONTISTIS Z, VAKROS J, et al. Degradation of antibiotic sulfamethoxazole by biochar-activated persulfate: factors affecting the activation and degradation processes[J]. Catalysis Today, 2018, 313: 128-133. | 37 | RONG Xing, XIE Meng, KONG Lingshuai, et al. The magnetic biochar derived from banana peels as a persulfate activator for organic contaminants degradation[J]. Chemical Engineering Journal, 2019, 372: 294-303. | 38 | ZHOU Xuerong, ZENG Zhuotong, ZENG Guangming, et al. Persulfate activation by swine bone char-derived hierarchical porous carbon: multiple mechanism system for organic pollutant degradation in aqueous media[J]. Chemical Engineering Journal, 2019, 123091. | 39 | 刘子乐, 曾泽泉, 杨洁杨, 等. 表面改性活性炭活化过硫酸盐降解苯酚[J]. 高等学校化学学报, 2017, 38(7): 1241-1248. | 39 | LIU Zile, ZENG Zequan, YANG Jieyang, et al. Degradation of phenol with persulfate activated by surface modified activated carbon[J]. Chemical Journal of Chinese Universities, 2017, 38(7): 1241-1248. | 40 | 李飞跃, 桂向阳, 刘晨, 等. 改性生物炭催化过硫酸盐脱色金橙Ⅱ[J]. 环境污染与防治, 2018, 40(11): 1207-1213. | 40 | LI Feiyue, GUI Xiangyang, LIU Chen, et al. Decoloration of dye Acid Organge 7 by modified biochar catalyzed persulfate[J]. Environmental Pollution and Control, 2018, 40(11): 1207-1213. | 41 | YANG Shiying, LI Lei, XIAO Tuo, et al. Role of surface chemistry in modified ACF (activated carbon fiber)-catalyzed peroxymonosulfate oxidation[J]. Applied Surface Science, 2016, 383: 142-150. | 42 | WANG Guanlong, CHEN Shuo, QUAN Xie, et al. Enhanced activation of peroxymonosulfate by nitrogen doped porous carbon for effective removal of organic pollutants[J]. Carbon, 2017, 115: 730-739. | 43 | LIU Chao, CHEN Liwei, DING Dahu, et al. From rice straw to magnetically recoverable nitrogen doped biochar: efficient activation of peroxymonosulfate for the degradation of metolachlor[J]. Applied Catalysis B: Environmental, 2019, 254: 312-320. | 44 | WANG Na, MA Wenjie, REN Ziqiu, et al. Prussian blue analogues derived porous nitrogen-doped carbon microspheres as high-performance metal-free peroxymonosulfate activators for non-radical-dominated degradation of organic pollutants[J]. Journal of Materials Chemistry A, 2018, 6: 884-895. | 45 | MA Wenjie, DU Yuchen, WANG Na, et al. ZIF-8 derived nitrogen-doped porous carbon as metal-free catalyst of peroxymonosulfate activation[J]. Environmental Science and Pollution Research, 2017, 24: 16276-16288. | 46 | SUN Hongwei, PENG Xingxing, ZHANG Shuping, et al. Activation of peroxymonosulfate by nitrogen-functionalized sludge carbon for efficient degradation of organic pollutants in water[J]. Bioresource Technology, 2017, 241: 244-251. | 47 | YU Jiangfang, TANG Lin, PANG Ya, et al. Magnetic nitrogen-doped sludge-derived biochar catalysts for persulfate activation: internal electron transfer mechanism[J]. Chemical Engineering Journal, 2019, 364: 146-159. | 48 | GUO Yaoping, ZENG Zequan, ZHU Youcai, et al. Catalytic oxidation of aqueous organic contaminants by persulfate activated with sulfur-doped hierarchically porous carbon derived from thiophene[J]. Applied Catalysis B: Environmental, 2018, 220: 635-644. | 49 | GUO Yaoping, ZENG Zequan, LI Yulin, et al. Catalytic oxidation of 4-chlorophenol on in-situ sulfur-doped activated carbon with sulfate radicals[J]. Separation and Purification Technology, 2017, 179: 257-264. | 50 | GUO Yaoping, ZENG Zequan, LI Yulin, et al. In-situ sulfur-doped carbon as a metal-free catalyst for persulfate activated oxidation of aqueous organics[J]. Catalysis Today, 2018, 307: 12-19. | 51 | PU Mengjie, MA Yongwen, WAN Jinquan, et al. Fe/S doped granular activated carbon as a highly active heterogeneous persulfate catalyst toward the degradation of Orange G and diethyl phthalate[J]. Journal of Colloid and interface Science, 2014, 418: 330-337. | 52 | HUSSAIN I, LI Mingyu, ZHANG Yongqing, et al. Insights into the mechanism of persulfate activation with nZVI/BC nanocomposite for the degradation of nonylphenol[J]. Chemical Engineering Journal, 2017, 311: 163-172. | 53 | JIANG Shunfeng, LING Lili, CHEN Wenjing, et al. High efficient removal of Bisphenol A in a peroxymonosulfate/iron functionalized biochar system: mechanistic elucidation and quantification of the contributors[J]. Chemical Engineering Journal, 2019, 359: 572-583. | 54 | LI Zhijun, YANG Qi, ZHONG Yu, et al. Granular activated carbon supported iron as a heterogeneous persulfate catalyst for the pretreatment of mature landfill leachate[J]. RSC Advances, 2016, 6: 987-994. | 55 | 王艳, 李春华, 龚畏, 等. Fe/生物炭活化过硫酸盐降解偶氮染料金橙Ⅱ[J]. 应用化工, 2017, 46(12): 2328-2330, 2335. | 55 | WANG Yan, LI Chunhua, GONG Wei, et al. Study on azo dyes orangeⅡ removal using Fe/BC activated persulfate[J]. Applied Chemical Industry, 2017, 46(12): 2328-2330, 2335. | 56 | YANG Mingtong, DU Yunchen, TONG Waichi, et al. Cobalt-impregnated biochar produced from CO2-mediated pyrolysis of Co/lignin as an enhanced catalyst for activating peroxymonosulfate to degrade acetaminophen[J]. Chemosphere, 2019, 226: 924-933. | 57 | 王忠明, 黄天寅, 陈家斌, 等. 载银活性炭活化过硫酸钠降解酸性橙7[J]. 环境科学, 2015, 36(11): 4127-4134. | 57 | WANG Zhongming, HUANG Tianyin, CHEN Jiabin, et al. Degradation of Acid Orange 7 with persulfate activated by silver loaded granular activated carbon[J]. Environmental Science, 2015, 36(11): 4127-4134. | 58 | OUYANG Da, YAN Jingchun, QIAN Linbo, et al. Degradation of 1,4-dioxane by biochar supported nano magnetite particles activating persulfate[J]. Chemosphere, 2017, 184: 607-617. | 59 | DONG Chengdi, CHEN Chiuwen, HUNG Changmao. Synthesis of magnetic biochar from bamboo biomass to activate persulfate for the removal of polycyclic aromatic hydrocarbons in marine sediments[J]. Biorecource Technology, 2017, 245: 188-195. | 60 | DONG Chengdi, CHEN Chiuwen, TSAI Meilin, et al. Degradation of 4-nonylphenol in marine sediments by persulfate over magnetically modified biochars[J]. Biorecource Technology, 2019, 281: 143-148. | 61 | PI Zhoujie, LI Xiaoming, WANG Dongbo, et al. Persulfate activation by oxidation biochar supported magnetite particles for tetracycline removal: performance and degradation pathway[J]. Journal of Cleaner Production, 2019, 235: 1103-1115. | 62 | 黄晓东, 涂佳. 活性炭负载铁催化过硫酸盐降解酸性大红3R[J]. 环境科学学报, 2014, 34(6): 1449-1454. | 62 | HUANG Xiaodong, TU Jia. Degradation of acid red 3R by persulfate with Fe-loaded activated carbon as catalyst[J]. Acta Scientiae Circumstantiae, 2014, 34(6): 1449-1454. | 63 | 张倩, 谢陈飞洋, 仇玥, 等. Fe/污泥基生物炭持久活化过硫酸盐降解酸性橙G[J]. 中国环境科学, 2019, 39(9): 3879-3886. | 63 | ZHANG Qian, Feiyang XIE-CHEN, QIU Yue, et al. Durable degradation of Orange G using persulfate activated by sludge-derived heterogeneous catalyst[J]. China Environmental Science, 2019, 39(9): 3879-3886. | 64 | 周鑫, 孙德栋, 马红超, 等. Fe/活性炭非均相催化过硫酸钾处理罗丹明B废水[J]. 大连工业大学学报, 2017, 36(2): 116-119. | 64 | ZHOU Xin, SUN Dedong, MA Hongchao, et al. Decolorization of Rhodamine B wastewater by potassium persulfate with Fe-loaded activated carbon in heterogeneous system[J]. Journal of Dalian Polytechnic University, 2017, 36(2): 116-119. | 65 | 王晨曦, 万金泉, 马邕文, 等. 负载型颗粒活性炭催化过硫酸钠氧化降解橙黄G[J]. 环境工程学报, 2015, 9(1): 231-218. | 65 | WANG Chenxi, WAN Jinquan, MA Yiwen, et al. Degradation of Orange G catalyzed by Fe/GAC in the presence of persulfate[J]. Chinese Journal of Environmental Engineering, 2015, 9(1): 231-218. | 66 | 刘祎, 吉飞, 李朝林. Cu/AC/过硫酸氢钾体系催化降解罗丹明B的研究[J]. 化学科学, 2019, 37(4): 92-96. | 66 | LIU Yi, JI Fei, LI Chaolin. Catalytic degradation of Rhodamine B by Cu/AC/peroxymonosulfate system[J]. Chemical Sciences, 2019, 37(4): 92-96. | 67 | 李一凡, 王应军, 廖鑫. CuO/Ac催化过硫酸盐对模拟废水中苯酚的降解效果[J]. 环境科学研究, 2018, 31(11): 1949-1956. | 67 | LI Yifan, WANG Yingjun, LIAO Xin. Degradation effect of phenol in simulated wastewater by CuO/Ac catalyzed persulfate[J]. Research of Environmental Sciences, 2018, 31(11): 1949-1956. | 68 | CHEN Liwen, YANG Shengjiong, ZUO Xu, et al. Biochar modification significantly promotes the activity of Co3O4 towards heterogeneous activation of peroxymonosulfate[J]. Chemical Engineering Journal, 2018, 354: 856-865. | 69 | 徐清艳. 活性炭负载锰催化 Na2S2O8降解亚甲基蓝的研究[J]. 山东化工, 2017, 46(20): 173-175. | 69 | XU Qingyan. The degradation of methylene blue by sodium persulfate with Mn-loaded activated carbon as catalyst[J]. Shandong Chemical Industry, 2017, 46(20): 173-175. | 70 | 唐婧, 范开敏. 改性粉末活性炭活化过硫酸盐降解罗丹明B废水[J]. 工业水处理, 2016, 36(3): 50-53. | 70 | TANG Jing, FAN Kaimin. Degradation of Rhodamine B wastewater by modified & powdered active carbon activated persulfate[J]. Industrial Water Treatment, 2016, 36(3): 50-53. | 71 | 王艳, 杨硕, 张米雪, 等. ZnFe/BC活化过硫酸盐降解金橙Ⅱ[J]. 环境化学, 2018, 37(12): 2630-2637. | 71 | WANG Yan, YANG Shuo, ZHANG Mixue, et al. Degradation of Orange II by ZnFe/BC catalyzed persulfate[J]. Environmental Chemistry, 2018, 37(12): 2630-2637. | 72 | 李旭东, 宋秀兰, 李圆圆. 磁性活性炭活化S2O82-在焦化废水深度处理中的应用[J]. 工业水处理, 2019, 39(5): 69-73. | 72 | LI Xudong, SONG Xiulan, LI Yuanyuan. Application of magnetic activated carbon activated S2O82- to the advanced treatment of coking wastewater[J]. Industrial Water Treatment, 2019, 39(5): 69-73. | 73 | 黄晓丹, 薛美香, 陈国平, 等. 改性生物炭催化过硫酸氢钾降解染料废水中罗丹明6G的研究[J]. 化学研究与应用, 2019, 31(5): 975-981. | 73 | HUANG Xiaodan, XUE Meixiang, CHEN Guoping, et al. Heterogeneous activation of peroxymonosulfate by modified biochar for the degradation of Rhodamine 6G[J]. Chemical Research and Application, 2019, 31(5): 975-981. | 74 | WANG Zhongjuan, ZHANG Xinyi, ZHANG Huixuan, et al. Synthesis of magnetic nickel ferrite/carbon sphere composite for levofloxacin elimination by activation of persulfate[J]. Separation and Purification Technology, 2019, 215: 528-539. | 75 | MA Qiuling, NENGZI Lichao, LI Bo, et al. Heterogeneously catalyzed persulfate with activated carbon coated with CoFe layered double hydroxide (AC@CoFe-LDH) for the degradation of lomefloxacin[J]. Separation and purification Technology, 2020, 235: 116204. | 76 | Wenda OH, Shunkuang LUA, DONG Zhili, et al. Performance of magnetic activated carbon composite as peroxymonosulfate activator and regenerable adsorbent via sulfate radical-mediated oxidation processes[J]. Journal of Hazardous Materials, 2015, 284: 1-9. | 77 | 王毅博, 冯民权, 刘永红, 等. 铁碳微电解技术在难治理废水中的研究进展[J]. 化工进展, 2018, 37(8): 3188-3196. | 77 | WANG Yibo, FENG Minquan, LIU Yonghong, et al. Recent advances on iron-carbon micro-electrolysis technology for refractory wastewater[J]. Chemical Industry and Engineering Progress, 2018, 37(8): 3188-3196. | 78 | 尹汉雄, 唐玉朝, 黄显怀, 等. Fe-AC微电解活化过硫酸盐降解直接耐酸大红4BS[J]. 环境工程学报, 2018, 12(3): 768-778. | 78 | YIN Hanxiong, TANG Yuchao, HUANG Xianhuai, et al. Decolorization of direct fast scarlet 4BS by persulfate activated using iron-carbon micro-electrolysis[J]. Chinese Journal of Environmental Engineering, 2018, 12(3): 768-778. | 79 | 易俊, 吴先威, 王燕, 等. Fe0/C微电解活化过硫酸盐降解活性红X-3B[J]. 水处理技术, 2018, 44(10): 44-48, 52. | 79 | YI Jun, WU Xianwei, WANG Yan, et al. Reactive red X-3B degradation by Fe0/C micro-electrolysis coupled with persulfate[J]. Technology of Water Treatment, 2018, 44(10): 44-48, 52. | 80 | 黄萌萌, 买文宁, 李海松. 铁炭微电解-Fe(2+)/K2S2O8降解甲基橙[J]. 环境工程学报, 2014, 8(3): 935-940. | 80 | HUANG Mengmeng, Wenning MAI, LI Haisong. Degradation of methyl orange by iron carbon micro-electrolysis -Fe2+/K2S2O8[J]. Chinese Journal of Environmental Engineering, 2014, 8(3): 935-940. | 81 | 涂保华, 黄鑫, 李秀玲, 等. 炭微促进Fe0/K2S2O8处理乙二胺四乙酸-Ni废水[J]. 水处理技术, 2019, 45(9): 57-61, 67. | 81 | TU Baohua, HUANG Xin, LI Xiuling, et al. Treatment of EDTA-Ni wastewater by carbon micro-promoted Fe0/K2S2O8[J]. Technology of Water Treatment, 2019, 45(9): 57-61, 67. | 82 | 孙德栋, 骆丹, 孙义才, 等. 铁碳微电解与过硫酸氢钾联用处理亚甲基蓝废水[J]. 大连工业大学学报, 2018, 37(5): 367-371. | 82 | SUN Dedong, LUO Dan, SUN Yicai, et al. Degradation of metahylene blue wastewater by combination of iron-carbon mirco-electrolysis and potassium peroxymonopersulfate treatment[J]. Journal of Dalian Polytechnic University, 2018, 37(5): 367-371. | 83 | LI Xiang, ZHOU Minghua, PAN Yuwen. Enhance degradation of 2,4-dichlorophenoxyacetic acid by pre-magnetization Fe-C activated persulfate: influential factors, mechanism and degradation pathway[J]. Journal of Hazardous Materials, 2018, 353: 454-465. | 84 | LI Peng, LIU Zhipeng, WANG Xuegang, et al. Enhanced decolorization of methyl orange in aqueous solution using iron-carbon micro-electrolysis activation of sodium persulfate[J]. Chemosphere, 2017, 180: 100-107. | 85 | ZHANG Weixuan, LI Xiaoming, YANG Qi, et al. Pretreatment of landfill leachate in near-neutral pH condition by persulfate activated Fe-C micro-electrolysis system[J]. Chemosphere, 2019, 216: 749-756. | 86 | MA Zhifei, YANG Yu, JIANG Yonghai, et al. Enhanced degradation of 2,4-dinitrotoluene in groundwater by persulfate activated using iron-carbon micro-electrolysis[J]. Chemical Engineering Joural, 2016, 311: 183-190. | 87 | WANG Huazhe, GUO Wanqian, |
[1] |
张明焱, 刘燕, 张雪婷, 刘亚科, 李从举, 张秀玲. 非贵金属双功能催化剂在锌空气电池研究进展[J]. 化工进展, 2023, 42(S1): 276-286. |
[2] |
时永兴, 林刚, 孙晓航, 蒋韦庚, 乔大伟, 颜彬航. 二氧化碳加氢制甲醇过程中铜基催化剂活性位点研究进展[J]. 化工进展, 2023, 42(S1): 287-298. |
[3] |
谢璐垚, 陈崧哲, 王来军, 张平. 用于SO2去极化电解制氢的铂基催化剂[J]. 化工进展, 2023, 42(S1): 299-309. |
[4] |
杨霞珍, 彭伊凡, 刘化章, 霍超. 熔铁催化剂活性相的调控及其费托反应性能[J]. 化工进展, 2023, 42(S1): 310-318. |
[5] |
郑谦, 官修帅, 靳山彪, 张长明, 张小超. 铈锆固溶体Ce0.25Zr0.75O2光热协同催化CO2与甲醇合成DMC[J]. 化工进展, 2023, 42(S1): 319-327. |
[6] |
戴欢涛, 曹苓玉, 游新秀, 徐浩亮, 汪涛, 项玮, 张学杨. 木质素浸渍柚子皮生物炭吸附CO2特性[J]. 化工进展, 2023, 42(S1): 356-363. |
[7] |
高雨飞, 鲁金凤. 非均相催化臭氧氧化作用机理研究进展[J]. 化工进展, 2023, 42(S1): 430-438. |
[8] |
顾永正, 张永生. HBr改性飞灰对Hg0的动态吸附及动力学模型[J]. 化工进展, 2023, 42(S1): 498-509. |
[9] |
孙玉玉, 蔡鑫磊, 汤吉海, 黄晶晶, 黄益平, 刘杰. 反应精馏合成甲基丙烯酸甲酯工艺优化及节能[J]. 化工进展, 2023, 42(S1): 56-63. |
[10] |
杨寒月, 孔令真, 陈家庆, 孙欢, 宋家恺, 王思诚, 孔标. 微气泡型下向流管式气液接触器脱碳性能[J]. 化工进展, 2023, 42(S1): 197-204. |
[11] |
杨建平. 降低HPPO装置反应系统原料消耗的PSE[J]. 化工进展, 2023, 42(S1): 21-32. |
[12] |
王福安. 300kt/a环氧丙烷工艺反应器降耗减排分析[J]. 化工进展, 2023, 42(S1): 213-218. |
[13] |
王胜岩, 邓帅, 赵睿恺. 变电吸附二氧化碳捕集技术研究进展[J]. 化工进展, 2023, 42(S1): 233-245. |
[14] |
赖诗妮, 江丽霞, 李军, 黄宏宇, 小林敬幸. 含碳掺氨燃料的研究进展[J]. 化工进展, 2023, 42(9): 4603-4615. |
[15] |
王鹏, 史会兵, 赵德明, 冯保林, 陈倩, 杨妲. 过渡金属催化氯代物的羰基化反应研究进展[J]. 化工进展, 2023, 42(9): 4649-4666. |
京ICP备12046843号-2;京公网安备 11010102001994号 版权所有 © 《化工进展》编辑部
地址:北京市东城区青年湖南街13号 邮编:100011
电子信箱:hgjz@cip.com.cn
本系统由北京玛格泰克科技发展有限公司设计开发 技术支持:support@magtech.com.cn
|
|