首页> 外文期刊>Journal of Hazardous Materials >Rational design of 3D/2D In_2O_3 nanocube/ZnIn_2S_4 nanosheet heterojunction photocatalyst with large-area 'high-speed channels' for photocatalytic oxidation of 2,4-dichlorophenol under visible light
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Rational design of 3D/2D In_2O_3 nanocube/ZnIn_2S_4 nanosheet heterojunction photocatalyst with large-area 'high-speed channels' for photocatalytic oxidation of 2,4-dichlorophenol under visible light

机译:具有大面积“高速通道”的3D / 2D In_2O_3纳米立方/ ZnIn_2S_4纳米片异质结光催化剂的合理设计,用于可见光下2,4-二氯苯酚的光催化氧化

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摘要

We have rationally designed and fabricated of "face-to-face" 3D/2D In2O3 nanocube/ZnIn2S4 nanosheet heterojunction by growing ZnIn2S4 nanosheets on the surfaces of In2O3 cubes as photocatalysts for 2,4-di-chlorophenol (2,4-DCP) degradation under visible light. Herein, the unique 3D/2D In2O3 nanocube/ZnIn2S4 nanosheet hierarchical structure not only exposes far more abundant heterojunction interface active sites compared to 3D/0D In2O3 nanocube/ZnIn2S4 nanoparticle, but also produces numbers of compact high-speed nanochannels in the junctions, which significantly promotes the separation and migration of photogenerated carriers. Profiting by structural and compositional advantages, the optimized 3D/2D ZnIn2S4-In2O3 photo-catalyst shows excellent photocatalytic activity and stability in the degradation of 2,4-DCP, which is 1.85, 2.60, 3.02 and 3.54-fold higher than that of 3D/0D ZnIn2S4-In2O3, ZnIn2S4 nanosheet, ZnIn2S4 nanoparticle and In2O3, respectively. Meanwhile, the main active species (center dot O-2(-), center dot OH and h(+)) produced in the photodegradation process were determined and the intermediates and degradation mechanism were studied in detail. Besides, the application on the removal of 2,4-DCP in natural water and actual wastewaters by 3D/2D ZnIn2S4-In2O3 also have been studied. This work provides a new strategy for efficiently optimize the advantages of binary nano-architectures to effectively degrade phenolic pollutants in the environment.
机译:通过在In2O3立方体表面上生长ZnIn2S4纳米片作为2,4-二氯苯酚(2,4-DCP)的光催化剂,我们合理设计和制造了“面对面” 3D / 2D In2O3纳米立方体/ ZnIn2S4纳米片异质结。在可见光下降解。在此,独特的3D / 2D In2O3纳米立方体/ ZnIn2S4纳米片分层结构不仅比3D / 0D In2O3纳米立方体/ ZnIn2S4纳米颗粒暴露出更多丰富的异质结界面活性位,而且在结中产生了许多紧凑的高速纳米通道。大大促进了光生载流子的分离和迁移。得益于结构和成分优势,优化的3D / 2D ZnIn2S4-In2O3光催化剂在2,4-DCP降解中显示出优异的光催化活性和稳定性,比3D分别高1.85、2.60、3.02和3.54倍/ 0D ZnIn2S4-In2O3,ZnIn2S4纳米片,ZnIn2S4纳米颗粒和In2O3。同时,确定了光降解过程中产生的主要活性物质(中心点O-2(-),中心点OH和h(+)),并详细研究了中间体和降解机理。此外,还研究了3D / 2D ZnIn2S4-In2O3在天然水和实际废水中去除2,4-DCP的应用。这项工作提供了一种新的策略,可以有效地优化二元纳米体系结构的优势,以有效降解环境中的酚类污染物。

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