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C3N4/Cu/ZnFe2O4 Ternary Nanocomposites:Removal of Environmental Pollutants by the Synergy of Physical Adsorption and Photocatalysis

机译:C3N4/CU/ZNFE2O4三元纳米复合材料:通过物理吸附和光催化的协同作用去除环境污染物

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Although binary composites can enhance the separation efficiency of photo-generated carriers to a certain extent,there is still space for further improvement.Here,we focus on using copper,a cheap transition metal,as an electron channel to improve the photo-generated carrier separation efficiency of ZnFe2O4(ZFO)and C3N4(CN)composites.The kinetic constants of sample 40%-ZFO/CN for photodegradation reaction are 2.96 and 1.98 times than that of pure sample ZFO and CN under the same conditions.However,the kinetic constants of 3% Cu@40%-ZFO/CN are 7.33 and 4.92 times than that of pure sample ZFO and CN,respectively.This is probably due to the physical adsorption performances of ternary composites for pollutants are significantly stronger than those of binary composites.The best photocatalysts achieved 90% degradation efficiency within 15 minutes.A more reasonable photocatalytic mechanism model was proposed.Photo-generated hole,superoxide anion,and hydroxyl radical all play an important role in the photocatalytic reaction.The importance of them is superoxide anion>photo-generated hole>singlet oxygen>hydroxyl radical from high to low.
机译:尽管二进制复合材料可以在一定程度上提高照片生成的载体的分离效率,但仍有进一步改进的空间。在这里,我们专注于使用铜,便宜的过渡金属作为电子通道,以改善光电载体ZnFe2O4(ZFO)和C3N4(CN)复合材料的分离效率。样品的动力学常数为40%-ZFO/CN的光降解反应是2.96和1.98倍,是纯样品ZFO和CN的动力学常数。 3%Cu@40%-ZFO/CN的常数分别是纯样品ZFO和CN的常数。这可能是由于污染物三元复合材料的物理吸附性能比二进制复合材料的物理吸附性能明显强大。最佳的光催化剂在15分钟内达到了90%的降解效率。提出了更合理的光催化机制模型。光子生成的孔,超氧化物阴离子和羟基均起着重要作用在光催化反应中。它们的重要性是超氧化物阴离子>照片生成的孔>单线氧>从高到低的羟基自由基。

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