Activation persulfate for efficient tetrabromobisphenol A degradation via carbon-based materials: Synergistic mechanism of doped N and Fe

四溴双酚A 过氧二硫酸盐 过硫酸盐 生物炭 降级(电信) 化学 吸附 碳纤维 分解 单线态氧 核化学 氧气 环境化学 热解 材料科学 有机化学 催化作用 复合数 阻燃剂 复合材料 电信 计算机科学
作者
Zhengfang Zhang,Yang Liu,Ying Zhang,Ruohan Li,Yuntao Guan
出处
期刊:Journal of Hazardous Materials [Elsevier]
卷期号:455: 131471-131471 被引量:30
标识
DOI:10.1016/j.jhazmat.2023.131471
摘要

In this study, a novel carbon-based material (Fe-N-PGWBC) utilizing the garden waste, melamine and FeSO4 as the precursor was successfully synthesized, efficiently activating peroxydisulfate (PDS) to degrade tetrabromobisphenol A (TBBPA). Under typical conditions (Fe-N-PGWBC dose of 100 mg·L−1, PDS of 0.2 mM and TBBPA of 10 mg·L−1), Fe-N-PGWBC/PDS system could achieve over 99% TBBPA removal (including adsorption and degradation) within 60 min, and the corresponding rate constant ks was 0.0724 min−1, which was almost 40.2 times higher than that of the pristine biochar. The extraction experiments implied that the excellent adsorption performance of Fe-N-PGWBC did not hinder the degradation of TBBPA. Abundant active sites (rich oxygen-containing functional groups, Fe-O and Fe3C) of Fe-N-PGWBC could effectively promote PDS decomposition to produce reactive oxygen species. The probe-based kinetic modelling methods verified that approximately 87.6% TBBPA was degraded by SO4·-, 12.2% TBBPA was degraded by 1O2, and 0.2% TBBPA was degraded by ·OH. Furthermore, based on the calculation of density functional theory and identification of products, TBBPA was mainly involved in three transformation pathways including hydroxylation, debromination and β-scission process. The study proposed a facile resource approach of garden waste and provided deeper understanding for the TBBPA degradation mechanisms in heterogeneous system.
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