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首页> 外文期刊>ACS Omega >Solvent Effect on the Solvothermal Synthesis of Mesoporous NiO Catalysts for Activation of Peroxymonosulfate to Degrade Organic Dyes
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Solvent Effect on the Solvothermal Synthesis of Mesoporous NiO Catalysts for Activation of Peroxymonosulfate to Degrade Organic Dyes

机译:溶剂作用对过氧化单硫酸盐活化降解有机染料的介孔NiO催化剂溶剂热合成的影响

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In this work, we successfully prepared three different mesoporous NiO nanostructures with preferential (111) planes using three different solvents–water, a water–ethanol mixture, and a water–ethylene glycol mixture. The NiO nanosheets prepared from the water–ethylene glycol mixture and denoted as NiO-EG showed a nanosheet morphology thinner than 10 nm, whereas the water–ethanol and water samples were 30–40 nm and above 100 nm thick, respectively. The NiO-EG catalyst was found to exhibit a high catalyzing ability to activate peroxymonosulfate (PMS) for decoloring dyes, by which 94.4% of acid orange 7 (AO7) was degraded under the following reaction conditions: AO7 = 50 mg/L, catalyst = 0.2 g/L, PMS = 0.8 g/L, pH = 7, and 30 min reaction time. The dye degradation rate was investigated as a function of the catalyst dosage, pH, and dye concentration. According to quenching experiments, it was found that SO4?–, HO?, and O2?– were the dominant radicals for AO7 degradation, and oxygen vacancies played a significant role in the generation of radicals. High surface area, thin flaky structure, rich oxygen vacancies, fast charge transport, and low diffusion impedance all enhanced the catalytic activity of NiO-EG, which exhibited the highest degradation ability due to its abundant accessible active sites for both adsorption and catalysis.
机译:在这项工作中,我们使用三种不同的溶剂(水,水-乙醇混合物和水-乙二醇混合物)成功制备了具有优先(111)平面的三种不同的介孔NiO纳米结构。由水-乙二醇混合物制得的NiO纳米片表示为NiO-EG,其纳米片形态小于10 nm,而水-乙醇和水样品的纳米片形态分别为30-40 nm和100 nm以上。发现NiO-EG催化剂具有高活性,可活化过氧单硫酸盐(PMS)以使染料脱色,在以下反应条件下,其中94.4%的酸性橙7(AO7)降解:AO7 = 50 mg / L,催化剂= 0.2g / L,PMS = 0.8g / L,pH = 7,反应时间为30分钟。研究了染料降解速率与催化剂用量,pH和染料浓度的关系。根据淬灭实验,发现SO4′,HO′和O2′是AO7降解的主要自由基,氧空位在自由基的产生中起重要作用。高表面积,薄片状结构,富氧空位,快速电荷传输和低扩散阻抗都增强了NiO-EG的催化活性,由于其吸附和催化活性丰富,它们具有最高的降解能力。

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