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March 14, 2026ACS ES&T Water2 citationsOpen Access

Linking Targeted GC–MS Disinfection Byproduct Analysis with Nontargeted LC–HRMS Characterization of Dissolved Organic Matter to Evaluate Drinking Water Treatment Performance

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FZF. Zafra-NavarroUniversitat de GironaSMSaida MartíCatalan Institute for Water ResearchSSSimeon SchumNew Mexico State University

Key Points

  • The aim is to assess how dissolved organic matter transformations affect disinfection byproduct formation in drinking water treatment.
  • Full-scale analysis of a conventional drinking water treatment plant.
  • Integrated approach combining targeted and nontargeted mass spectrometry techniques.
  • Quantification of disinfection byproducts and adsorbable organic halides measurements.
  • Approximately 60% of dissolved organic carbon was removed.
  • Molecular fingerprinting showed selective removal patterns of dissolved organic matter.
  • Aromatic compounds were preferentially eliminated, while aliphatic fractions remained associated with higher disinfection byproducts.

Abstract

Evaluating drinking water treatment (DWT) performance requires understanding how dissolved organic matter (DOM) is transformed during treatment and how these transformations drive the formation of disinfection byproducts (DBPs), which remain major concerns in drinking water safety. While current regulations target a limited number of DBP classes, including trihalomethanes (THMs) and haloacetic acids (HAAs), chlorination of DOM produces a much broader pool of largely unregulated DBPs with poorly understood toxicological relevance. In this study, a full-scale conventional drinking water treatment plant was evaluated using an integrated analytical framework combining molecular-level DOM fingerprinting by high-resolution mass spectrometry, targeted DBP quantification by gas chromatography–mass spectrometry, and adsorbable organic halide measurements. This integrated approach enables the assessment of DOM transformation and DBP formation under realistic treatment conditions. Although approximately 60% of dissolved organic carbon (DOC) was removed, molecular fingerprinting revealed a highly selective DOM removal pattern. Aromatic and condensed aromatic compounds were preferentially eliminated, whereas aliphatic and unsaturated fractions persisted and showed a positive statistical association with DBP formation. These results indicate that bulk DOC removal alone is insufficient to mitigate DBP formation and highlight the need for treatment strategies targeting specific reactive DOM fractions to enhance drinking water safety.

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Cite This Study

Zafra-Navarro et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbeab39f7826a300c6d2https://doi.org/10.1021/acsestwater.5c01470
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