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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >CeO2 nanorod/g-C3N4/N-rGO composite: enhanced visible-light-driven photocatalytic performance and the role of N-rGO as electronic transfer media
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CeO2 nanorod/g-C3N4/N-rGO composite: enhanced visible-light-driven photocatalytic performance and the role of N-rGO as electronic transfer media

机译:CeO2纳米棒/ g-C3N4 / N-rGO复合材料:增强的可见光驱动的光催化性能以及N-rGO作为电子转移介质的作用

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摘要

A novel CeO2 nanorod/g-C3N4/N-rGO ternary composite was synthesized using a simple ultrasonic-heat treatment method for application in the photocatalytic degradation of organic pollutants under the irradiation of visible light. This material shows superior photocatalytic activity compared with pure g-C3N4 and CeO2 nanorods, and the photodegradation rate of RhB is up to 2.1-fold higher than that of the g-C3N4/N-rGO (at the optimum content of 0.25 wt% N-rGO) catalyst when the content of CeO2 nanorods was 2 wt%. The enhancement of photocatalytic activity could be attributed to the synergistic effect among CeO2, g-C3N4 and N-rGO (serves as a conductive network), which was found to lead to more efficient separation of photogenerated electron-hole pairs, resulting in the effective photodegradation of organic pollutants. In addition, superoxide radical anions (O-center dot(2)-) and holes (h(+)) were considered as the main reactive species during the photodegradation process, and the ternary composite also exhibited preferable stability for the decomposition of RhB. This work provides an in-depth perspective for understanding the N-doped graphene-involved photocatalytic mechanism.
机译:利用一种简单的超声热处理方法,合成了一种新型的CeO2纳米棒/ g-C3N4 / N-rGO三元复合材料,用于可见光照射下光催化降解有机污染物。与纯g-C3N4和CeO2纳米棒相比,该材料显示出优异的光催化活性,RhB的光降解速率比g-C3N4 / N-rGO的光降解速率高2.1倍(在0.25 wt%N的最佳含量下)。当CeO2纳米棒的含量为2 wt%时(-rGO)催化剂。 CeO2,g-C3N4和N-rGO(作为导电网络)之间的协同作用可导致光催化活性的增强,这被发现可导致更有效地分离光生电子-空穴对,从而获得有效的光催化活性。有机污染物的光降解。此外,在光降解过程中,超氧自由基阴离子(O-中心点(2)-)和空穴(h(+))被认为是主要的反应物种,并且三元复合物还显示出较好的RhB分解稳定性。这项工作为理解N掺杂石墨烯参与的光催化机理提供了深入的视角。

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