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Simultaneous Control of Chlorite and Micropollutants in Drinking Water through Far-UVC Photolysis

作者:Yichen Ma, Xi Zhang, Zhixuan Tan, Wanxin Li, Ran Yin, Xinkun Ren · 发表于:Environmental Science & Technology · 年份:2025 · DOI:10.1021/acs.est.5c08408 · 被引用次数:5 · 研究领域:Advanced oxidation water treatment、Water Treatment and Disinfection、Listeria monocytogenes in Food Safety

Developing chemical-free approaches for the simultaneous control of micropollutants and disinfection byproducts aligns with sustainable development initiatives. We herein demonstrate that far-UVC radiation (UV 222 ) effectively degrades chlorite─a regulated disinfection byproduct of chlorine dioxide─as well as micropollutants in drinking water. The fluence-based photodecay rate constants of chlorite at 222 nm are 2.03-, 21.44-, and 20.22-fold higher than those at 254 nm in buffered deionized water, tap water, and surface water, respectively. Such enhancement is attributed to the 1.62-fold higher molar absorption coefficient and 1.44-fold higher apparent quantum yield at 222 nm compared to those at 254 nm. During UV 222 photolysis of chlorite (1.0 mg L –1 ) in buffered deionized water (pH 7.0), HO • (2.61 (±0.22) × 10 –15 M), Cl • (4.89 (±0.13) × 10 –16 M), and ClO • (3.26 (±0.97) × 10 –15 M) are generated. The values are 1.75-, 0.92-, and 3.01-fold higher than those produced under 254 nm irradiation. Nitrate has a negligible effect on chlorite photodecay and radical generation at 254 nm but exhibits a significant promoting effect at 222 nm. Additionally, natural organic matter suppresses chlorate formation during the UV 222 photolysis of chlorite. The findings advance the understanding of chlorite photochemistry and provide a sustainable strategy for micropollutant abatement in water.