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Reactivity of natural organic matter with aqueous chlorine and bromine

机译:天然有机物与氯和溴水溶液的反应性

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While both aqueous bromine (HOBr/OBr~-) and chlorine (HOCl/OCl~-) react with natural organic matter (NOM) during water treatment, limited direct parallel comparison of bromine versus chlorine has been conducted. Experiments with model compounds and natural waters indicated more efficient substitution reactions with bromine than chlorine. Kinetic experiments with NOM isolates with and without pre-ozonation were conducted to obtain second-order rate constants (k) with bromine and chlorine. Two-stage reaction kinetics (rapid initial and slower consumption stages) were observed. Bromine reacted about 10 times faster than chlorine with NOM isolates during both stages. The rapid initial stage reactions were too fast to quantify k values, but qualitative estimates ranged between 500 and 5000 M~(-1) s~(-1). For the slower second stage k values for bromine were 15 to 167 M~(-1) s~(-1) over the pH range of 5-11, and lower for chlorine (k = 0.7-5M~(-1) s~(-1)). Values of k correlated with initial SUVA values of NOM (UVA measured at 254 nm divided by DOC). Based upon UV/VIS and solid-state ~(13)C-NMR spectroscopy, chlorine addition to a NOM isolate resulted in significant oxidation of aromatic and ketone groups while bromine had significantly less change in spectra. Overall, the improved knowledge that bromine reacts faster and substitutes more efficiently than chlorine will be useful in developing strategies to control disinfection by-product formation during water treatment.
机译:尽管在水处理过程中,含水溴(HOBr / OBr-)和氯(HOCl / OCl-)都会与天然有机物(NOM)反应,但已进行了有限的溴与氯平行平行直接比较。用模型化合物和天然水进行的实验表明,用溴取代氯比用氯更有效。进行了带有和不带有预臭氧化作用的NOM分离物的动力学实验,以获得含溴和氯的二级速率常数(k)。观察到两阶段反应动力学(快速的初始阶段和较慢的消耗阶段)。在两个阶段中,溴与NOM分离物的反应速度都比氯快约10倍。初始阶段的快速反应太快,无法量化k值,但定性估计范围在500至5000 M〜(-1)s〜(-1)之间。对于较慢的第二阶段,在5-11的pH范围内,溴的k值为15至167 M〜(-1)s〜(-1),而氯的k值为更低(k = 0.7-5M〜(-1)s 〜(-1))。 k的值与NOM的初始SUVA值(在254 nm处测得的UVA除以DOC)相关。基于UV / VIS和固态〜(13)C-NMR光谱,将氯添加到NOM分离物中会导致芳族和酮基的显着氧化,而溴的光谱变化则小得多。总体而言,与氯相比,溴的反应更快,替代效率更高的知识的改进将有助于制定策略来控制水处理过程中消毒副产物的形成。

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