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钴氧化物与石墨相氮化碳复合异质结用于高效 Z 型光催化环境污染物降解性能。

Cobalt oxide coupled with graphitic carbon nitride composite heterojunction for efficient Z-scheme photocatalytic environmental pollutants degradation performance.

机构信息

School of Chemical Engineering, Yeungnam University, Gyeongsan, 38541, Republic of Korea.

Materials Science Research Laboratory, Department of Physics, Periyar University, Salem, 636 011, Tamil Nadu, India.

出版信息

Environ Res. 2023 Oct 15;235:116574. doi: 10.1016/j.envres.2023.116574. Epub 2023 Jul 7.

Abstract

The CoO/g-CN Z-scheme composite heterojunction has been effectively built in a facile sonication-assisted hydrothermal manner. The as-synthesized optimal 0.2 M CoO/g-CN (GCO2) composite photocatalysts (PCs) revealed admirable degradation efficiency towards methyl orange (MO, 65.1%) and methylene blue (MB, 87.9%) organic pollutant compared with bare g-CN within 210 min under light irradiation. Besides, the features of investigating structural, morphological and optical properties have evidence that the unique decoration effect of CoO nanoparticles (NPs) on the g-CN structure with intimate interface heterojunction of well-matched band structures noticeably facilitates the photo-generated charge transport/separation efficiency, reduces the recombination rates and widens the visible-light fascination which could advantageous to upgrading photocatalytic action with superior redox ability. Especially, the probable Z-scheme photocatalytic mechanism pathway is also elucidated in detail based on the quenching results. Hence, this work delivers a facile and hopeful candidate for contaminated water remediation via visible-light photocatalysis over the efficient g-CN-based catalysts.

摘要

采用简便的超声辅助水热法有效地构建了 CoO/g-CN Z 型复合异质结。所合成的最佳 0.2 M CoO/g-CN(GCO2)复合光催化剂(PCs)在光照下 210 min 内对甲基橙(MO,65.1%)和亚甲基蓝(MB,87.9%)有机污染物的降解效率明显优于裸 g-CN。此外,通过对结构、形貌和光学性质的特征研究,证明了 CoO 纳米粒子(NPs)对 g-CN 结构的独特修饰效果,具有紧密的界面异质结和良好匹配的能带结构,显著提高了光生载流子的输运/分离效率,降低了复合速率,拓宽了可见光吸收范围,有利于提高具有优异氧化还原能力的光催化性能。特别是,还根据猝灭结果详细阐明了可能的 Z 型光催化机理途径。因此,这项工作为通过基于 g-CN 的高效催化剂进行可见光光催化来修复受污染的水提供了一种简便且有希望的候选方法。

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