[1] MENYA E, JJAGWE J, KALIBBALA H M, et al. Progress in deployment of biomass-based activated carbon in point-of-use filters for removal of emerging contaminants from water: A review[J]. Chemical Engineering Research & Design, 2023, 192: 412-40.
[2] LUO Y, GUO W, NGO H H, et al. A review on the occurrence of micropollutants in the aquatic environment and their fate and removal during wastewater treatment[J]. Science of the Total Environment, 2014, 473: 619-641.
[3] 滕恺, 武道吉, 任会学, 等. 家用净水器净水材料标准与卫生安全性探讨[J]. 净水技术, 2019, 38(9): 68-74+99.
[4] HUANG X, YU Y, CHEN H, et al. Disinfection by-product formation and toxicity evaluation for chlorination with powered activated carbon[J]. Water Research, 2021, 205: 117660. doi: 10.1016/j.watres.2021.117660
[5] BULMAN D M, REMUCAL C K. Role of reactive halogen species in disinfection byproduct formation during chlorine photolysis[J]. Environmental Science & Technology, 2020, 54(15): 9629-9639.
[6] VOUDRIAS E A, LARSON R A, SNOEYINK V L. Effects of activated carbon on the reactions of free chlorine with phenols[J]. Environmental Science & Technology, 1985, 19(5): 441-449.
[7] 马超, 倪洪星, 戚羽霖. 超高效液相色谱-傅里叶变换离子回旋共振质谱法解析溶解性有机质的化学多样性[J]. 色谱, 2023, 41(8): 662-672.
[8] LAVONEN E E, GONSIOR M, TRANVIK L J, et al. Selective chlorination of natural organic matter: identification of previously unknown disinfection byproducts[J]. Environmental Science & Technology, 2013, 47(5): 2264-2271.
[9] ZHANG H, ZHANG Y, SHI Q, et al. Study on transformation of natural organic matter in source water during chlorination and its chlorinated products using ultrahigh resolution mass spectrometry[J]. Environmental Science & Technology, 2012, 46(8): 4396-4402.
[10] HERTKORN N, RUECKER C, MERINGER M, et al. High-precision frequency measurements: indispensable tools at the core of the molecular-level analysis of complex systems[J]. Analytical and Bioanalytical Chemistry, 2007, 389(5): 1311-1327. doi: 10.1007/s00216-007-1577-4
[11] ZHANG X, KANG J, CHU W, et al. Spectral and mass spectrometric characteristics of different molecular weight fractions of dissolved organic matter[J]. Separation and Purification Technology, 2020, 253: 117390. doi: 10.1016/j.seppur.2020.117390
[12] SINHA R, GUPTA A K, GHOSAL P S. A review on trihalomethanes and haloacetic acids in drinking water: Global status, health impact, insights of control and removal technologies[J]. Journal of Environmental Chemical Engineering, 2021, 9(6): 106511. doi: 10.1016/j.jece.2021.106511
[13] WANG Y, XIANG Y, DOS SANTOS M M, et al. UV/chlorine and chlorination of effluent organic matter fractions: Tracing nitrogenous DBPs using FT-ICR mass spectrometry[J]. Water Research, 2023, 231: 119646. doi: 10.1016/j.watres.2023.119646
[14] VOUDRIAS E A, LARSON R A, SNOEYINK V L. Importance of surface free-radicals in the reactivity of antigranulocytes activated carbon under water-treatment conditions[J]. Carbon, 1987, 25(4): 503-515. doi: 10.1016/0008-6223(87)90191-6
[15] LEI Y, LEI X, WESTERHOFF P, et al. Reactivity of chlorine radicals (Cl and Cl2•-) with dissolved organic matter and the formation of chlorinated byproducts[J]. Environmental Science & Technology, 2021, 55(1): 689-699.
[16] BEN W, SUN P, HUANG C-H. Effects of combined UV and chlorine treatment on chloroform formation from triclosan[J]. Chemosphere, 2016, 150: 715-722. doi: 10.1016/j.chemosphere.2015.12.071
[17] SUN P, LEE W N, ZHANG R, et al. Degradation of deet and caffeine under UV/chlorine and simulated sunlight/chlorine conditions[J]. Environmental Science & Technology, 2016, 50(24): 13265-13273.
[18] HAO Z, SHI F, CAO D, et al. Freezing-induced bromate reduction by dissolved organic matter and the formation of organobromine compounds[J]. Environmental Science & Technology, 2020, 54(3): 1668-1676.
[19] 王雪凝, 张炳亮, 潘丙才. 市政污水二级出水中溶解性有机质在紫外/氯处理过程中的转化特性[J]. 环境科学, 2021, 42(8): 3847-3857.
[20] LEENHEER J A, CROUé J P. Characterizing aquatic dissolved organic matter[J]. Environmental Science & Technology, 2003, 37(1): 18A-26A.
[21] ERSAN M S, LIU C, AMY G, et al. The interplay between natural organic matter and bromide on bromine substitution[J]. Science of the Total Environment, 2019, 646: 1172-1181. doi: 10.1016/j.scitotenv.2018.07.384
[22] ZHANG W, ZHOU S, WU Y, et al. Computerized pathway generator for the UV/free chlorine process: prediction of byproducts and reactions[J]. Environmental Science & Technology, 2021, 55(4): 2608-2617.
[23] ZHANG Y, LI J, BAI J, et al. Total organic carbon and total nitrogen removal and simultaneous electricity generation for nitrogen-containing wastewater based on the catalytic reactions of hydroxyl and chlorine radicals[J]. Applied Catalysis B-Environmental, 2018, 238: 168-176. doi: 10.1016/j.apcatb.2018.07.036
[24] LEI Y, CHENG S, LUO N, et al. Rate constants and mechanisms of the reactions of Cl and Cl2•- with trace organic contaminants[J]. Environmental Science & Technology, 2019, 53(19): 11170-11182.