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Updated: Jan 15, 2026

Exploring the Radical Nature of a Carbon Surface by Electron Paramagnetic Resonance and a Calibrated Gas Flow
Published on: April 24, 2014
Carbonate radicals in environmental systems: mechanistic insights and engineering applications
Zhantao Cai1, Gancheng Zuo1, Liping Huang1
1School of Environment, Jiangsu Engineering Lab of Water and Soil Eco-remediation, Nanjing Normal University, Nanjing, 210023, China.
Abstract:
Carbonate radical (CO3•-) is prevalent in both natural environments and engineered water treatment systems, originating from reactions between carbonate species (CO32-/HCO3-) and free radicals or triplet states of dissolved organic matter (3DOM*). Its significant roles in environmental oxidation, advanced oxidative water treatment, and cellular oxidative damage are increasingly recognized. Despite extensive research on CO3•-, a gap remains in comprehensive reviews addressing its kinetics and mechanisms in pollutant removal and environmental impact. This review synthesizes previous studies, tracing the historical recognition of CO3•- in environmental sciences and comparing various detection methods. The reaction rate constants of CO3•- with organic contaminants (kCO3•-) are summarized, and the relationship between pollutant structure and reactivity is explored. Reaction mechanisms and the selectivity of CO3•- are critically evaluated in comparison to other common radicals, such as hydroxyl (HO•) and sulfate (SO4•-). Furthermore, the dual roles of CO3•- as both primary and secondary radicals in advanced oxidation processes (AOPs), along with its impact on degradation pathways and byproduct toxicity, are assessed. Finally, the environmental implications of CO3•-, including its contributions to self-purification, metal transport, and biological oxidative damage, are discussed. This review aims to offer a comprehensive framework for understanding CO3•- in environmental contexts, enhancing its application in AOP systems and natural remediation.
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