[1] HELLER-GROSSMAN L, IDIN A, RELIS B L, et al. Formation of cyanogen bromide and other volatile DBPs in the disinfection of bromide-rich lake water[J]. Environmental Science & Technology, 1999, 33(6):932-937.
[2] MAGAZINOVIC R S, NICHOLSO B C, MULCAHY D E, et al. Bromide levels in natural waters:Its relationship to levels of both chloride and total dissolved solids and the implications for water treatment[J]. Chemosphere, 2004, 57(4):329-335.
[3] RICHARDSON S D, FASANO F, ELLINGTON J J, et al. Occurrence and mammalian cell toxicity of iodinated disinfection byproducts in drinking water[J]. Environmental Science & Technology, 2008, 42(22):8330-8338.
[4] RICHARDSON S D, POSTIGO C. Drinking water disinfection byproducts//Emerging organic contaminants and human health[M]. Berlin, Germany:Springer-Verlag, 2011:93-138.
[5] XIE Y F. Disinfection byproducts in drinking water:Formation, analysis and control[M]. Boca Raton, FL:Lewis Publishers, 2004.
[6] ZHAI H Y, ZHANG X R, LIU J Q, et al. Formation of brominated disinfection byproducts during chloramination of drinking water:New polar species and overall kinetics[J]. Environmental Science & Technology, 2014, 48(5):2579-2588.
[7] KRISTIANA I, GALLARD H, JOLL C, et al. The formation of halogen-specific TOX from chlorination and chloramination of natural organic matter isolates[J]. Water Research, 2009, 43(17):4177-4186.
[8] ROOK J J. Formation of haloforms during chlorination of natural waters[J]. Water Treatment and Examination, 1974, 23(2):234-243.
[9] RICHARDSON S D. Disinfection by-products:Formation and occurrence in drinking water//Encyclopedia of Environmental Health[M]. Burlington:Elsevier, 2011.
[10] ZHANG X R, TALLEY J W, BOGGESS B, et al. An electrospray ionization-tandem mass spectrometry method for identifying chlorinated drinking water disinfection byproducts[J]. Water Research, 2004, 38(18):3920-3930.
[11] ZHANG X R, TALLEY J W, BOGGESS B, et al. Fast selective detection of polar brominated disinfection byproducts in drinking water using precursor ion scans[J]. Environmental Science & Technology, 2008, 42(17):6598-6603.
[12] ZHAI H Y, ZHANG X R. Formation and decomposition of new and unknown polar brominated disinfection byproducts during chlorination[J]. Environmental Science & Technology, 2011, 45(6):2194-2201.
[13] PAN Y, ZHANG X R. Four groups of new aromatic halogenated disinfection byproducts:Effect of bromide concentration on their formation and speciation in chlorinated drinking water[J]. Environmental Science & Technology,2013, 47(3):1265-1273.
[14] YANG M T, ZHANG X R. Comparative developmental toxicity of new aromatic halogenated DBPs in a chlorinated saline sewage effluent to the marine polychaete Platynereis dumerilii[J]. Environmental Science & Technology, 2013, 47(19):10868-10876.
[15] WANG W, QIAN Y C, LI J H, et al. Analytical and toxicity characterization of halo-hydroxyl-benzoquinones as stable halobenzoquinone disinfection byproducts in treated water[J]. Analytical Chemistry, 2014, 86(10):4982-4988.
[16] LIU J Q, ZHANG X R. Comparative toxicity of new halophenolic DBPs in chlorinated saline wastewater effluents against a marine alga:Halophenolic DBPs are generally more toxic than haloaliphatic ones[J]. Water Research, 2014, 65:64-72.
[17] BOND T, HUANG J, TEMPLETON M R. Occurrence and control of nitrogenous disinfection by-products in drinking water-a review[J]. Water Research, 2011, 45:4341-4354.
[18] ROCCARO P, VAGLIASINDI F G, KORSHIN G V. Relationships between trihalomethanes, haloacetic acids, and haloacetonitriles formed by the chlorination of raw treated, and fractionated surface waters[J]. Journal of Water Supply:Research and Technology, 2014, 63:21-30.
[19] CHU W H, LI C J, GAO N Y, et al. Terminating preozonation prior to biological activated carbon filtration results in increased formation of nitrogenous disinfection by-products upon subsequent chlorination[J]. Chemosphere, 2015, 121:33-38.
[20] YANG Y L, YU H K, YANG X L. Characteristics of disinfection by-products precursors removal from micro-polluted water by constructed wetlands[J]. Ecological Engineering, 2016, 93:262-268.
[21] 付顺, 孙越. 碘代消毒副产物在净水工艺中的生成机制与控制措施[J].环境化学, 2016, 35(6):1153-1163. FU S, SUN Y. Formation mechanism and control measures of iodinated disinfection by-products in drinking water process[J]. Environmental Chemistry, 2016, 35(6):1153-1163(in Chinese).
[22] CHU W H, LI X, BOND T, et al. Copper increases reductive dehalogenation of haloacetamides by zero-valent iron in drinking water:Reduction efficiency and integrated toxicity risk[J]. Water Research, 2016, 107:141-150.
[23] 张永吉, 南军, 刘前军, 等. 铁盐和铝盐混凝剂对消毒副产物的控制作用及机制研究[J].环境化学, 2004, 23(4):420-423. ZHANG Y J, NAN J, LIU Q J, et al. The efficiency and mechanism of controlling chloroform formation by ferric and aluminium[J]. Environmental Chemistry, 2004, 23(4):420-423(in Chinese).
[24] ZUCCA P, ROSA A, TUBEROSO C, et al. Evaluation of antioxidant potential of "Maltese mushroom" (Cynomorium coccineum) by means of multiple chemical and biological assays[J]. Nutrients, 2013, 5(1):149-161.
[25] NAKAI S. Myriophyllum spicatum-released allelopathic polyphenols inhibiting growth of blue-green algae Microcystis aeruginosa[J]. Water Research, 2000, 34(11):3026-3032.
[26] REYNOLDS L D, WILSON N G. Scribes and scholars 3rd ed[M]. Oxford:1991:193-194.
[27] HUA G, KIM J, RECKHOW D A. Disinfection byproduct formation from lignin precursors[J]. Water Research, 2014, 63:285-295.
[28] TAN K H. Humic matter in soil and the environment. Principles and controversies[M]. New York:Marcel Dekker, 2003:408.
[29] RICE E W, BAIRD R B, EATON A D, et al. Standard methods for the examination of water and wastewater, 22 ed[M]. Washington, DC, Amer Public Health Assn, 2012.
[30] JONES M, GLOVER C. A fast efficient method to determine the presence of nitrosamines in cosmetics, personal care, and consumer products[J]. Waters Application Note 720005664EN, 2016.
[31] PAN Y, WANG Y, LI A M, et al. Detection, formation and occurrence of 13 new polar phenolic chlorinated and brominated disinfection byproducts in drinking water[J]. Water Research, 2017, 112:129-136.
[32] SMITH M B, MARCH J. March's advanced organic chemistry:Reactions, mechanisms, and structure[M]. New Jersey:John Wiley & Sons, Inc., Hoboken, 2007:747-748.
[33] PAN Y, ZHANG X R, WAGNER E D, et al. Boiling of simulated tap water:Effect on polar brominated disinfection byproducts, halogen speciation, and cytotoxicity[J]. Environmental Science & Technology, 2014, 48(1):149-156.
[34] CHU W H, GAO N Y KRASNER S W, et al. Formation of halogenated C-, N-DBPs from chlor(am)ination and UV irradiation of tyrosine in drinking water[J]. Environmental Pollution, 2012, 161(1):8-14.
[35] 楚文海, 高乃云, 赵世嘏, 等.在饮水中典型溶解性有机氮酪氨酸氯化生成氯仿的机理分析[J].化学学报, 2009, 67(21):2505-2510. CHU W H, GAO N Y, ZHAO S G, et al. The mechanism analysis of formation of chloroform dissolved organic nitrogen tyrosine chlorination in during typical drinking water[J]. Acta Chimica Sinica, 2009, 67(21):2505-2510(in Chinese).