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Unveiling the Key Role of Surface Oxidation through Quantifying Reaction Kinetics in Heterogeneous Catalysis for Water Treatment. | LitMetric

Unveiling the Key Role of Surface Oxidation through Quantifying Reaction Kinetics in Heterogeneous Catalysis for Water Treatment.

Environ Sci Technol

State Key Laboratory of Advanced Environmental Technology, Department of Environmental Science and Engineering, University of Science and Technology of China, Hefei 230026, China.

Published: June 2025


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Article Abstract

Quantifying surface-specific kinetics of organic oxidation in heterogeneous catalytic systems remains a critical challenge due to the interplay of adsorption and complex reaction mechanisms. In this study, we introduce a novel kinetic framework that distinguishes surface reaction kinetics () from conventional solution-phase kinetics (), using nitrogen-doped porous carbon (NPC) as a model catalyst with high adsorption capacity and exceptional efficacy in peroxymonosulfate (PMS) activation. By directly analyzing the selective oxidation of fully adsorbed -substituted phenolic compounds (-PCs), we precisely quantified and established robust QSAR models with remarkable linear correlations ( = 0.862-0.912) to molecular descriptors such as Hammett constant (σ), highest occupied molecular orbital energy (), and ionization potential (IP). In contrast, -based models showed weaker correlations ( = 0.363-0.551), reflecting interference from adsorption-desorption dynamics. This distinction underscores the limitations of solution-phase kinetics in systems with strong adsorption properties and highlights the enhanced mechanistic understanding and predictive power of surface-specific models. Further analysis revealed surface-selective oxidation via an electron transfer pathway, predominantly governed by the electronic properties of -PCs rather than their adsorption affinity. These findings provide a valuable approach to accurately capture surface reactivity and predicting pollutant behavior in heterogeneous sorption-oxidation systems.

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http://dx.doi.org/10.1021/acs.est.5c01560DOI Listing

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