化学
生物炭
氧化剂
激进的
溶解有机碳
环境化学
氧化还原
降级(电信)
天然有机质
电子转移
产量(工程)
光化学
热解
环境修复
无机化学
光敏剂
有机质
水处理
腐植酸
溶剂化电子
污染物
化学工程
单线态氧
小学(天文学)
地下水
胡敏
溶解
吸附
过硫酸盐
作者
Fang Jiang,Xinrong Liao,Haonan Dong,Ziyao Zhu,Li Guo,Huaxin Li,Li Rao,Zhihui Ai,Jingming Gong
标识
DOI:10.1021/acs.est.6c06874
摘要
Abstract The growing use of biochar is increasing the release of biochar-derived dissolved organic matter (BDOM) in surface waters. Concurrently, remediation of persistent per- and polyfluoroalkyl substances (PFAS) remains challenging. Although natural DOM can both photosensitize and scavenge reactive species, how BDOM modulates PFAS transformation in waters is unclear. Here, we show that low-level BDOM (1 mgC L–1) unexpectedly promotes PFAS defluorination in the UV/sulfite (UV/S) system by simultaneously boosting hydrated electron (eaq–) production and generating oxidizing radicals via triplet states (3BDOM*). The hydrophilic, moderately condensed aromatic, fulvic/humic-like fraction of BDOM is most effective across all tested feedstocks and pyrolysis temperatures. BDOM derived at 500 °C raises eaq– yield 2.6-fold over UV/S alone while co-producing •OH. Crucially, BDOM appears to reroute the eaq–-mediated decarboxylation–hydroxylation–elimination–hydrolysis pathway: instead of water addition, •OH may directly attack perfluorinated radical, making key steps more thermodynamically favorable and accelerating C–F cleavage. Leveraging naturally derived BDOM in waters, this eaq–/•OH-mediated reduction-oxidation coupling may reduce reliance on externally added chemicals while achieving complete degradation of perfluorocarboxylic acids and GenX within 1 h and ∼80% defluorination within 6 h. The findings establish BDOM as an intrinsic photosensitizer and electron ejector that reshapes radical chemistry and PFAS reaction pathways, supporting more efficient and sustainable UV/S-based remediation.
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