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Emerging low-temperature catalytic air oxidation technologies: A review on mechanisms and applications
Qi Jing1, Wenjia Huang2, Jiabai Cai2
1Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518055, China; Department of Agricultural and Biological Engineering, University of Illinois Urbana-Champaign, Urbana, IL 61801, United States.
Abstract:
Low-temperature catalytic air oxidation (LTCAO) uses air or O2 as the sole oxidant to drive the mineralization or detoxification of organic pollutants and the inactivation of pathogens at ambient-to-sub-boiling temperatures (<100°C), without external energy inputs such as light, electricity, or high heat. Based on the extent to which O2 activation contributes to pollutant removal, LTCAO systems are classified into poor-O2-effect and strong-O2-effect pathways to summarize the apparent catalytic trends observed across LTCAO systems. In the former, degradation relies primarily on direct catalyst-pollutant electron transfer, with O2 serving mainly as a terminal electron acceptor, whereas in the latter, reactive oxygen species generated by O2 activation play the dominant role. LTCAO catalysts are summarized into three types: single-atom catalysts, crystalline metal-based catalysts, and carbonaceous catalysts. For each catalyst type, the active sites and strategies for enhancing catalytic activity are reviewed. Catalytic pathways based on ground-state electron transfer are summarized, along with several mechanistic hypotheses and corresponding characterization strategies proposed to test them. The influence of catalyst dosage, pH, coexisting ions, and reactor configuration on LTCAO efficiency is analyzed together with the underlying mechanisms.
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