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首页> 外文期刊>Chemical engineering journal >Significant enhancement of micropollutant photocatalytic degradation using a TiO2 nanotube array photoanode based photocatalytic fuel cell
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Significant enhancement of micropollutant photocatalytic degradation using a TiO2 nanotube array photoanode based photocatalytic fuel cell

机译:使用TiO2纳米管阵列光催化燃料电池显着提高微核性光催化降解的微拷贝光催化降解

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This study evaluated the application of a membrane-free photocatalytic fuel cell composed of a TiO2 nanotube array photoanode and a Cu cathode, i.e. TNA-Cu PFC system, for micropollutant removal from water. Significantly enhanced removal of a commonly present aqueous micropollutant 4-chloro-2-methylphenoxyacetic acid (MCPA) was obtained in this TNA-Cu PFC system: the TNA-Cu PFC system achieved better MCPA degradation compared to the conventional photocatalytic method using the same catalyst. In the TNA-Cu PFC system, the MCPA degradation was largely promoted under acidic conditions, indicating this as an important operational condition. The enhancement of MCPA degradation in the TNA-Cu PFC system involved better e(-)/h(+) separation and generation of other oxidants: in conventional photocatalytic process, hydroxyl radicals in liquid phase contributed to 93.7% MCPA degradation while only 2.4% MCPA degradation was mediated by other oxidants like O-center dot(2)-, H2O2, (HO2)-H-center dot; for MCPA degradation in the TNA-Cu PFC system, the contribution of hydroxyl radicals in the liquid phase decreased to 83.6%, while contribution of other oxidants like O-center dot(2)-, H2O2, (HO2)-H-center dot increased to 15.3%. This change in MCPA degradation mechanisms was confirmed via degradation intermediates analysis by LC-MS/MS. The study on the effect of electrolyte concentration suggests that when operated under acidic conditions, addition of electrolyte is not required. The TNA-Cu PFC system was shown to work well in the presence of up to 15 mg/L natural organic matter (originating from two large rivers), high amounts of common inorganic ions, and even in WWTP effluent. The TNA-Cu PFC system also exhibited relatively good stability after several cycles of repeated use. The obtained results demonstrated that this is an adequate system for micropollutant removal from water at various places in the water cycle, i.e. as polisher of WWTP effluents before discharge or for cleaning intake water before producing drinking water.
机译:该研究评估了由TiO2纳米管阵列光阳极和Cu阴极,即TNA-Cu PFC系统组成的无膜的光催化燃料电池的施用,用于从水中除去微量润湿性。在该TNA-Cu PFC系统中获得显着增强了通常存在的含水微拷贝4-氯-2-甲基苯甲基乙酸(MCPA):与使用相同催化剂的常规光催化方法相比,TNA-Cu PFC系统达到了更好的MCPA降解。在TNA-Cu PFC系统中,MCPA降解在很大程度上在酸性条件下促进,表明这是重要的操作条件。 TNA-Cu PFC系统中MCPA降解的增强涉及更好的E( - )/ h(+)分离和产生其他氧化剂的产生:在常规的光催化过程中,液相中的羟基自由基有助于93.7%的MCPA降解,同时仅为2.4% MCPA降解由其他氧化剂如O-Center Dot(2) - ,H 2 O 2,(HO2)-H中心点等其他氧化剂介导;对于TNA-Cu PFC系统中的MCPA降解,液相中的羟基自由基的贡献降至83.6%,而O-Center Dot(2) - ,H2O2(HO2)-H中心点等其他氧化剂的贡献增加到15.3%。通过LC-MS / MS的降解中间体分析来确认MCPA降解机制的这种变化。对电解质浓度的影响的研究表明,当在酸性条件下操作时,不需要添加电解质。显示TNA-Cu PFC系统在高达15mg / L天然有机物质(源自两个大河流)的情况下,高量的常见无机离子,甚至在WWTP流出物中,甚至在WWTP流出物中的情况下工作。在重复使用的几个循环后,TNA-Cu PFC系统也表现出相对良好的稳定性。所得的结果表明,这是一种适用于水循环中各个地方的水中的微量润载物去除的系统,即在排出前的WWTP流出物或用于在生产饮用水之前清洁进气。

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