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Bi_2WO_6 quantum dot-intercalated ultrathin montmorillonite nanostructure and its enhanced photocatalytic performance

机译:Bi_2WO_6量子点插层超薄蒙脱土纳米结构及其增强的光催化性能

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摘要

The kinetic competition between electron-hole recombination and water oxidation is a key limitation for the development of efficient solar water splitting materials. In this study, we present a solution for solving this challenge by constructing a quantum dot-intercalated nanostructure. For the first time, we show the interlayer charge of the intercalated nanostructure can significantly inhibit the electron-hole recombination in photocatalysis. For Bi_2WO_6 quantum dots (QDs) intercalated in a montmorillonite (MMT) nanostructure as an example, the average lifetime of the photogenerated charge carriers was increased from 3.06 μs to 18.8 μs by constructing the intercalated nanostructure. The increased lifetime markedly improved the photocatalytic performance of Bi_2WO_6 both in solar water oxidation and environmental purification. This work not only provides a method to produce QD-intercalated ultrathin nanostructures but also a general route to design efficient semiconductor-based photoconversion materials for solar fuel generation and environmental purification.
机译:电子-空穴复合和水氧化之间的动力学竞争是开发高效太阳能水分解材料的关键限制。在这项研究中,我们提出了一种通过构造量子点插入纳米结构来解决这一难题的解决方案。首次,我们显示了插层纳米结构的层间电荷可以显着抑制光催化中的电子-空穴复合。以嵌入蒙脱土(MMT)纳米结构中的Bi_2WO_6量子点(QDs)为例,通过构建嵌入的纳米结构,光生电荷载流子的平均寿命从3.06μs增加到18.8μs。使用寿命的延长显着提高了Bi_2WO_6在太阳能水氧化和环境净化中的光催化性能。这项工作不仅提供了一种生产QD嵌入的超薄纳米结构的方法,而且为设计有效的基于半导体的光转化材料的通用途径,用于太阳能发电和环境净化。

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