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April 19, 2026Environmental Science & Technology3 citations

Are We Truly Accurately Quantifying HO • Using Benzoic Acid Hydroxylation in Engineered HO • -Producing Systems?

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WZWenxiao ZhengQLQiaoxin LiHFHengyi Fu

Key Points

  • The study aims to assess the reliability of benzoic acid hydroxylation for quantifying hydroxyl radicals in engineered systems.
  • Tested three engineered hydroxyl radical-producing systems: UV/H2O2, homogeneous Fenton, heterogeneous Fenton.
  • Analyzed the formation of BA-derived hydroxylation products and their interference in subsequent reactions.
  • Evaluated the impact of benzoic acid and its products on photochemical processes and iron reactivity.
  • Benzoic acid forms a radical cation via electron transfer, leading to misinterpretation in hydroxyl radical quantification.
  • Aromatic hydroxylation signals can be affected by BA competing for photons and altering iron species reactivity.
  • Confounding factors compromise the identification of hydroxyl radicals, highlighting the need for careful interpretation of results.

Abstract

The hydroxyl radical (HO•), which is one of the most reactive intermediates, plays a significant role in numerous environmental chemical processes in both natural and engineered systems. Given its extremely short lifetime and low steady-state concentration, aromatic hydroxylation probes such as benzoic acid (BA) are commonly used for indirect detection, relying on the formation of stable and long-lived hydroxylation products. However, BA-derived signals may not originate from HO•, leading to a potential misinterpretation. Here, we systematically tested three representative engineered HO•-producing systems (e.g., UV/H2O2, homogeneous Fenton, and heterogeneous Fenton) to evaluate the reliability of BA hydroxylation signals for HO• quantification. It was revealed that BA can form a radical cation (BA•+) via electron transfer, followed by rapid hydrolysis that generates hydroxybenzoic acid. Moreover, BA and its oxidation products interfere with the reaction process by competing for photons in photochemical systems, altering the reactivity of Fe(III)/Fe(II) species through complexation in homogeneous systems, and blocking catalytic active sites in heterogeneous systems. These confounding factors compromise the validity of aromatic hydroxylation in identifying HO•. Overall, this study emphasizes the importance of understanding probe-induced interferences to ensure a more reliable characterization of HO•-involved processes.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/69e473bd010ef96374d8f74dhttps://doi.org/10.1021/acs.est.6c00461
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