Nonradical oxidation in persulfate activation by graphene-like nanosheets (GNS): Differentiating the contributions of singlet oxygen (1O2) and sorption-dependent electron transfer

过硫酸盐 单线态氧 电子转移 水溶液 化学 过氧二硫酸盐 光化学 石墨烯 催化作用 无机化学 氧气 材料科学 纳米技术 有机化学 吸附
作者
Shishu Zhu,Chao Jin,Xiaoguang Duan,Shaobin Wang,Shih‐Hsin Ho
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:393: 124725-124725 被引量:139
标识
DOI:10.1016/j.cej.2020.124725
摘要

Nonradical reactions induced by nanocarbon-driven peroxydisulfate (PDS) activation recently emerge a promising strategy of groundwater remediation or wastewater treatment, whereas the involved reaction pathways remain controversial. We here investigate and differentiate the two representative nonradical mechanisms of PDS activation on graphene-like nanosheets (GNS). The template-induced GNS exhibited a high porosity of over 1200 m2 g−1 and a few-layered turbostratic structure with graphitic microcrystals. The nonradical oxidation system (aqueous 1O2 and nonaqueous electron transfer) of GNS/PDS was highly-reactive, and outperformed graphene- or metal-based activators. Although singlet oxygen (1O2) was detected in the bulk solution, the contribution of 1O2 to the entire oxidation were limited (0.004–0.43% and ~6% at neutral and alkaline pH, respectively), determined by chemical probes and steady-state kinetics. Different to the reference product (benzoquinone) of phenol oxidation by photosensitive singlet oxygenation, intermediate product in GNS/PDS was benzoic acid which barely resulted from 1O2 oxidation. Furthermore, surface-confined electron transfer was the major oxidation pathway verified by electronic measurement. Surface adsorption rather than hydrophobic effect of organic substrates on GNS accelerated a two-electron transfer. The nonradical oxidation exhibited a dissociation constant (pKa)-dependent mechanism because of competitive adsorption with S2O82− anions. The findings facilitate a thorough understanding of carbon-catalyzed persulfate activation during in situ chemical oxidation (ISCO) and provide novel insights for the selective removal of aqueous organic contaminants in a nonradical manner.
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