2019
DOI: 10.1016/j.watres.2019.04.033
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Application of (LC/)MS/MS precursor ion scan for evaluating the occurrence, formation and control of polar halogenated DBPs in disinfected waters: A review

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Cited by 178 publications
(78 citation statements)
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References 113 publications
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“…20% and 13% to total organic halide content in chlorinated drinking water, respectively, and that 62.4% of the chlorine disinfection byproducts are still unknown. 64 , 65 The HPLC–ICPMS/MS certainly offers attractive options for detecting and identifying these unknown species when used in conjunction with molecular high-resolution mass spectrometry. This general capability of ICPMS/MS as a chromatographic detector for new contaminant/biomarker discovery has been very rarely employed 66 but is nevertheless increasingly gaining recognition since the relatively recent introduction of the technique.…”
Section: Resultsmentioning
confidence: 99%
“…20% and 13% to total organic halide content in chlorinated drinking water, respectively, and that 62.4% of the chlorine disinfection byproducts are still unknown. 64 , 65 The HPLC–ICPMS/MS certainly offers attractive options for detecting and identifying these unknown species when used in conjunction with molecular high-resolution mass spectrometry. This general capability of ICPMS/MS as a chromatographic detector for new contaminant/biomarker discovery has been very rarely employed 66 but is nevertheless increasingly gaining recognition since the relatively recent introduction of the technique.…”
Section: Resultsmentioning
confidence: 99%
“…This paper covers various aspects of the regulatory and disposal standard in different countries of the world regarding the discharge of medical facilities' wastewater, these streams' management and way for their treatment, which are currently accepted and best suited. The following works (Abu-shanab, 2013;Garcia-villanova et al, 2010;Yang et al, 2019;Zhai et al, 2014;Zhang et al, 2016) present the results of monitoring existing treatment systems for various industries. This mini-review would introduce the subject, the study's need, the motivation for the task, aim, objectives of the research and methodology that can be adopted for such a study (Awual et al, 2011;Benanou et al, 2010;Dad et al, 2018;Gopal et al, 2007;Kogevinas et al, 2016;Mazhar et al, 2020;Yang et al, 2019).…”
Section: Introductionmentioning
confidence: 99%
“…Chlorine-based disinfectants can directly destroy cell walls or oxidize proteins of organisms 8 . In addition, they can react with various kinds of organic matters, e.g., natural organic matters, effluent suspended solids, microorganisms, algal toxins, and anthropogenic contaminants, to form unintended disinfection by-products (DBPs) 9,10 . Up to now, more than 800 DBPs have been identified, including trihalomethanes (THMs), haloacetic acids (HAAs), halogen acetonitriles (HANs), halonitromethanes (HNMs), haloacetamides (HAcAms), haloketones (HKs) and nitrosamines (NAs).…”
Section: Introductionmentioning
confidence: 99%