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Updated: Jan 7, 2026

Single-throughput Complementary High-resolution Analytical Techniques for Characterizing Complex Natural Organic Matter Mixtures
Published on: January 7, 2019
Contribution of a Storm Event to Disinfection Byproduct Formation: Natural Organic Matter Sources, Characteristics,
Mohammad Kiron Shakhawat1, Karen E Moore2, Rakesh K Gelda2
1Civil and Environmental Engineering, University of Massachusetts Amherst, Amherst Massachusetts 01003-9345, United States.
Abstract:
This study investigates the relationship between storm-driven changes in natural organic matter (NOM) and disinfection byproduct (DBP) formation. The novel framework presented correlates specific differential absorbance at 254 nm (Sp-ΔUV254), which measures the change in UV254 due to chlorination normalized by initial dissolved organic carbon (DOC) concentration, with critical water quality parameters such as chlorine demand, DBP formation, size-fractionated NOM, and lignin to enhance mechanistic understandings of DBP precursor dynamics. To evaluate the impact of a storm on the DBP precursor dynamics, samples were collected from the Neversink River (NY) during a high-flow event. The formation of total trihalomethanes (THMs), or specific trihalomethanes (Sp-THM) when normalized by initial DOC, strongly correlated to Sp-ΔUV254. The pre- and postchlorinated samples' quotients of absorbances at 250 and 365 nm (E2/E3) yielded a strong correlation despite a decreased ΔUV254 due to chlorination, suggesting dissolved organic matter transformation to less aromatic structures, in agreement with size exclusion chromatography (SEC) data. A novel SEC-DOC technique showed THM precursors increased during the rising limb of the storm with a predominant molecular weight range of 2000-10,000 Da. Stable water isotope (δ18O) measurements suggest quick mobilization of stored NOM accumulated in the watershed, which was also supported by quantified lignin concentrations.
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