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Continuously Improved Photocatalytic Performance of Zn2SnO4/SnO2/Cu2O Composites by Structural Modulation and Band Alignment Modification

机译:通过结构调制和带对准改变不断提高Zn2SnO4 / SnO2 / Cu2O复合材料的光催化性能

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摘要

Improving the photocatalytic performance of multi-component photocatalysts through structural modulation and band alignment engineering has attracted great interest in the context of solar energy utilization and conversion. In our work, Zn2SnO4/SnO2 hierarchical architectures comprising nanorod building block assemblies were first achieved via a facile solvothermal synthesis route with lysine and ethylenediamine (EDA) as directing agents, and then chemically etched in NaOH solution to enlarge the surface area and augment active sites. The etched Zn2SnO4/SnO2 hierarchical architectures were further decorated by Cu2O nanoparticles though an in situ chemical deposition method based on band alignment engineering. In comparison with unetched Zn2SnO4/SnO2, the specific surface area of Zn2SnO4/SnO2/Cu2O hierarchical architectures became larger, and the responsive region and absorbance intensity became wider and higher in the whole visible-light range. Zn2SnO4/SnO2/Cu2O hybrid photocatalysts presented enormously improved visible-light photocatalytic behaviour for Rhodamine B (RhB) decomposition. The enhancement of photocatalytic behaviour was dominantly attributed to the synergy effect of the larger specific surface area, higher light absorption capacity, and more effective photo-induced charge carrier separation and migration. A proposed mechanism for the enormously promoted photocatalytic behaviour is brought forth on the basis of the energy-band structure combined with experimental results.
机译:通过结构调制和带对准工程改善多组分光催化剂的光催化性能引起了对太阳能利用和转换的巨大兴趣。在我们的工作中,首先通过与赖氨酸和乙二胺(EDA)为引导剂的容易的溶剂热合成途径来实现包括纳米棒构件组件的Zn2SnO4 / SnO2分层架构,然后在NaOH溶液中化学蚀刻以扩大表面积并增加活性位点。蚀刻的Zn2SNO4 / SnO2分层架构进一步由Cu2O纳米颗粒提供了基于带对准工程的原位化学沉积方法。与未取出的Zn2SNO4 / SnO2相比,Zn2SNO4 / SnO2 / Cu2O分层架构的比表面积变大,并且响应区域和吸光度强度在整个可见光范围内变宽且更高。 Zn2SNO4 / SNO2 / CU2O杂化光催化剂呈现出罗丹明B(RHB)分解的卓越性升高的可见光光催化行为。光催化行为的增强主要归因于较大的比表面积,较高光吸收能力和更有效的光诱导的电荷载体分离和迁移的协同效应。基于能量带结构与实验结果结合起来,基于实验结果提出了一种巨大促进的光催化行为的提出机制。

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