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首页> 外文期刊>Journal of Colloid and Interface Science >Catalytic ozonation of di-n-butyl phthalate degradation using manganese ferrite/reduced graphene oxide nanofiber as catalyst in the water
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Catalytic ozonation of di-n-butyl phthalate degradation using manganese ferrite/reduced graphene oxide nanofiber as catalyst in the water

机译:使用锰铁氧体/氯硝酸盐氧化烯烯纤维作为水中催化剂的二叔丁酯降解邻苯二甲酸酯降解的催化臭氧化合物

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摘要

Graphene oxide doping MnFe2O4 (rGO-MnFe2O4) nanofibers were synthesized via electrospinning method and applied to degrade refractory Di-n-butyl Phthalate (DBP) by catalytic ozonation in the water. Characterizations and effect of various conditions on DBP removal were investigated. Meanwhile, the mechanism of enhanced DBP degradation after rGO incorporation was explored intensively. Results showed that 5 wt% GO doping into MnFe2O4 improved the concentration of surface hydroxyl sites (SHSC), the oxidation potential, material diffusion and charge electronic transfer ability in contrast to MnFe2O4 nanofibers, resulting in significantly enhanced DBP degradation compared with ozonation alone. Chemisorbed oxygen groups (Mn-O-H, C-O-H or C-OOH) on the surface of rGO-MnFe2O4 played a key role in generating radicals, which was the origin of catalytic ozonation reaction. Moreover, a good positive linear relation between SHSC and DBP removal was found. The electrons cycle between Mn2+ and Mn3+ induced the ozone decomposition to produce hydroxyl radicals, which was the major impetus for DBP degradation in 5%rGO-MnFe2O4/O-3 system. Composite nanofiber of 5%rGOMnFe(2)O(4) had a good stability and removal rate only decreased for 4% after five times reuse. (C) 2018 Published by Elsevier Inc.
机译:通过静电纺丝方法合成石墨烯氧化物掺杂MnFe2O4(Rgo-MnFe2O4)纳米纤维并施加通过水中的催化臭氧化降解耐火耐火二丁酯(DBP)。研究了各种条件对DBP去除的特征和影响。同时,探讨了RGO掺入后增强DBP降解的机制。结果表明,与MNFE2O4纳米纤维相比,5wt%掺杂进入MnFe2O4改善表面羟基(SHSC)的浓度,氧化电位,材料扩散和电荷电子转移能力,与单独的臭氧化相比,导致DBP降解显着增强。在RGO-MnFe2O4的表面上的化学吸附的氧(Mn-O-H,C-O-H或C-OOH)在产生自由基时起着关键作用,这是催化臭氧化反应的起源。此外,发现了SHSC和DBP去除之间的良好的正线性关系。 Mn2 +和Mn3之间的电子循环诱导臭氧分解以产生羟基自由基,这是5%RGO-MNFE2O4 / O-3系统中DBP降解的主要动力。 5%rgomnfe(2)O(4)的复合纳米纤维具有良好的稳定性,除去后,去除率仅减少了4%的再利用。 (c)2018由elsevier公司出版

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