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The peroxone reaction between O 3 and H 2 O 2 has been deemed a promising technology to resolve the increasingly serious water pollution problem by virtue of the generation of superactive hydroxyl radicals ( • OH), but it suffers greatly from an extremely limited reaction rate constant under acidic conditions (ca. less than 0.1 M –1 s –1 at pH 3). This article describes a heterogeneous catalyst composed of single Mn atoms anchored on graphitic carbon nitride, which effectively overcomes such a drawback by altering the reaction pathway and thus dramatically promotes • OH generation in acid solution. Combined experimental and theoretical studies demonstrate Mn–N 4 as the catalytically active sites. A distinctive catalytic pathway involving HO 2 • formation by the activation of H 2 O 2 is found, which gets rid of the restriction of HO 2 – as the essential initiator in the conventional peroxone reaction. This work offers a new pathway of using a low-cost and easily accessible single-atom catalyst (SAC) and could inspire more catalytic oxidation strategies.
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Guo et al. (2019) studied this question.
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