首页> 外文期刊>Iranian polymer journal >Preparation of photo-catalytic copolymer grafted asymmetric membranes (N-TiO2-PMAA-gamma-PVDF/PAN) and their application on the degradation of bentazon in water
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Preparation of photo-catalytic copolymer grafted asymmetric membranes (N-TiO2-PMAA-gamma-PVDF/PAN) and their application on the degradation of bentazon in water

机译:光催化共聚物接枝不对称膜(N-TiO2-PMAA-γ-PVDF/ PAN)的制备及其在水中苯达松降解中的应用

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photodegradation of bentazon. A bentazon removal efficiency of 90.1 % was achieved at pH 7. N-TiO2-PMAA-gamma-PVDF/PAN membranes were successfully prepared and characterized. These photocatalytic membranes showed great potential as a technology for the effective removal of pesticides from water. According to literature, N-TiO2-PMAA-gamma-PVDF/PAN asymmetric photocatalytic membranes have not been prepared before for the purpose of treating agricultural wastewater. Nitrogen-doped titanium dioxide (N-TiO2) was prepared and supported on a novel copolymer grafted membrane matrix to avoid the problems associated with the removal of spent photocatalyst from treated water. Membranes of poly (methacrylic acid) grafted onto poly (vinylidene difluoride) and blended with poly (acrylonitrile) (PMAA-g-PVDF/PAN) were prepared through a dry-wet phase inversion technique. Methacrylic acid side chains were grafted onto an activated PVDF backbone by the method of reversible addition fragmentation chain transfer polymerization and then the novel photocatalytic asymmetric membranes of N-TiO2-PMAA-gamma-PVDF/PAN were prepared. The casting solutions were blended with 1-5 % N-TiO2 before immersion into the coagulation bath. PVDF and PAN offer several advantages which include: mechanical strength and toughness, chemical resistance, unaffected by long-term exposure to UV radiation, low weight, and thermal stability. N-TiO2 was prepared through sol-gel synthesis. The photocatalytic membranes were evaluated by degradation process of herbicide bentazon in water. Photodegradation studies revealed that the optimum photocatalyst loading was 3 % N-TiO2 and the optimum pH was 7 for the degradation of bentazon in water. UV-Vis, TOC and LC-MS analyses confirmed the successful
机译:苯达松的光降解。在pH 7时,苯达松的去除效率达到90.1%。成功制备并表征了N-TiO2-PMAA-γ-PVDF/ PAN膜。这些光催化膜具有作为从水中有效去除农药的技术的巨大潜力。根据文献,出于处理农业废水的目的,尚未制备N-TiO 2-PMAA-γ-PVDF/ PAN不对称光催化膜。制备了氮掺杂的二氧化钛(N-TiO2),并将其负载在新型的共聚物接枝膜基质上,以避免与从处理过的水中去除废光催化剂有关的问题。通过干湿相转化技术制备了接枝到聚偏二氟乙烯上并与聚丙烯腈(PMAA-g-PVDF / PAN)共混的聚(甲基丙烯酸)膜。采用可逆加成断裂链转移聚合的方法将甲基丙烯酸侧链接枝到活化的PVDF主链上,制备出新型的N-TiO2-PMAA-γ-PVDF/ PAN光催化不对称膜。将浇铸溶液与1-5%N-TiO2混合,然后浸入凝固浴中。 PVDF和PAN具有以下优点:机械强度和韧性,耐化学性,不受长期暴露于紫外线辐射,重量轻和热稳定性的影响。 N-TiO2是通过溶胶-凝胶法合成的。通过除草剂苯达松在水中的降解过程评价了光催化膜。光降解研究表明,在水中苯达松的降解中,最佳光催化剂负载量为3%N-TiO2,最佳pH为7。 UV-Vis,TOC和LC-MS分析证实成功

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