Far UV light in water treatment via producing reactive oxidative species

Jingyun Fang, Kaiheng Guo, Sining Wu, Liping Wang, Wenlei Qin, Ruijie Xie, Xuchun Li
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Abstract

Abstract Far UV light at 222 nm (UV 222 ) is gaining much attention for water treatment due to its high disinfection efficiency and safety to human, and the mechanism is deemed direct photolysis. We found that UV 222 is much more efficient than UV 254 for the abatement of 18 organic micropollutants and inactivation of pathogens, and the phenomenon is related to the production of reactive oxidative species (ROS). Multiple ROS are identified, including hydroxyl radical (HO • ), singlet oxygen ( 1 O 2 ), superoxide radical anion ( • O 2 − ) and ozone (O 3 ). The degradation of micropollutants is mainly due to HO • , which results from water homolysis and oxygen (O2) photodissociation. The quantum yield of HO• is 0.893, and the concentration of HO • reaches 10 -13 M under neutral conditions. This study is the first that reports the efficient production of ROS upon UV 222 photolysis, which facilitates chemical-free advanced oxidation processes in water.
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远紫外光在水处理中通过产生活性氧化物质
摘要222 nm远紫外光(UV 222)因其消毒效率高且对人体安全,在水处理中受到广泛关注,其作用机制被认为是直接光解。研究发现,UV 222对18种有机微污染物的去除和病原菌的灭活效果明显优于UV 254,这一现象与活性氧(reactive oxidative species, ROS)的产生有关。鉴定出多种活性氧,包括羟基自由基(HO•)、单线态氧(1 O 2)、超氧自由基阴离子(•O 2−)和臭氧(O 3)。微污染物的降解主要是由水均解和氧(O2)光解产生的HO•。在中性条件下,HO•的量子产率为0.893,HO•的浓度达到10 -13 M。这项研究首次报道了UV 222光解作用下活性氧的高效产生,这有助于水中无化学物质的高级氧化过程。
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