化学
亚硫酸盐
降级(电信)
光解
环境化学
磺酸
天然有机质
吸收(声学)
基质(化学分析)
还原(数学)
胺气处理
吸附
沉积(地质)
辐照
激进的
有机质
光化学
水处理
活性氮物种
硫黄
过硫酸盐
无机化学
氧化还原
化学工程
核化学
过程(计算)
污染
作者
Xiaoyue Xin,Jiaqi Li,Ching‐Hua Huang
出处
期刊:ACS ES&T water
[American Chemical Society]
日期:2025-09-12
卷期号:5 (10): 6048-6057
被引量:9
标识
DOI:10.1021/acsestwater.5c00730
摘要
High Resolution Image Download MS PowerPoint Slide The UV-based advanced reduction processes (ARPs) have emerged as an effective strategy to degrade PFAS contaminants in water. This study investigates PFAS degradation by integrating far-UVC irradiation at 222 nm with sulfite-based ARPs. Comparative analysis of UV222/sulfite and conventional UV254/sulfite revealed that UV222/sulfite systems significantly improve the performance by generation of more hydrated electrons (e aq – ), the primary reactive species driving PFAS degradation, and exhibit superior energy efficiency, characterized by lower electrical energy per order ( E EO ). The higher efficiency of UV222/sulfite can be attributed to stronger light absorption of sulfite and higher photon energy at 222 nm. Under optimized stepwise sulfite dosing conditions, the UV222/sulfite ARP achieved high perfluorooctyl sulfonic acid (PFOS) removal efficiency, nearly 85% reduction in parent compound and 66% defluorination within a 6 h period, while the degradation of shorter-chain PFHxS and PFBS was slower. Real water matrix components can influence treatment efficiency. The impacts of nitrate/nitrite were transient and diminished after rapid photolysis at 222 nm, while dissolved organic matter and carbonates exerted strong reactive species scavenging effects. This study establishes UV222/sulfite ARP as a promising strategy to enhance PFAS degradation. Careful optimization of UV222/sulfite system parameters and water matrices will increase the adaptability for environmental PFAS remediation.
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