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面工程化界面设计的 NaYF:Yb, Tm 上转换纳米晶 BiOCl 纳米板增强近红外光催化。

Facet engineered interface design of NaYF:Yb,Tm upconversion nanocrystals on BiOCl nanoplates for enhanced near-infrared photocatalysis.

机构信息

Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, College of Chemistry and Life Sciences, Institute of Physical and Chemistry, Zhejiang Normal University, Jinhua, Zhejiang 321004, P. R. China.

出版信息

Nanoscale. 2016 Dec 7;8(45):19014-19024. doi: 10.1039/c6nr05720a. Epub 2016 Nov 3.

Abstract

The combination of upconversion nanocrystals with a wide-bandgap semiconductor is an efficient strategy to develop near-infrared (NIR)-responsive photocatalysts. The photocatalytic activity of the hybrid structures is greatly determined by the efficiency of the energy transfer on the interface between upconversion nanocrystals and the semiconductor. In this work, we demonstrate the interface design of a NaYF:Yb,Tm-BiOCl hybrid structure based on the choice of suitable BiOCl facets in depositing NaYF:Yb,Tm upconversion nanocrystals. It was found that the selective deposition of NaYF:Yb,Tm nanocrystals on the BiOCl(110) facet can greatly enhance the photocatalytic performance in dye degradation compared with the sample with NaYF:Yb,Tm nanocrystals loaded on the BiOCl(001) facet. Two effects were believed to contribute to this enhancement: (1) a stronger UV emission absorption ability of the BiOCl(110) facet from NaYF:Yb,Tm in generating more photo-induced charge carriers resulted from the narrower bandgap; (2) a shorter diffusion distance of photogenerated charge carriers to the BiOCl(110) reactive facet for surface catalytic reactions owing to the spatial charge separation between different facets. This work highlights the rational interfacial design of an upconversion nanocrystal-semiconductor hybrid structure for enhanced energy transfer in photocatalysis.

摘要

上转换纳米晶体与宽带隙半导体的组合是开发近红外(NIR)响应光催化剂的有效策略。杂化结构的光催化活性在很大程度上取决于上转换纳米晶体和半导体之间界面上能量转移的效率。在这项工作中,我们通过选择在沉积上转换纳米晶体时合适的 BiOCl 晶面,证明了 NaYF:Yb,Tm-BiOCl 杂化结构的界面设计。结果发现,与在 BiOCl(001)晶面负载 NaYF:Yb,Tm 纳米晶体的样品相比,NaYF:Yb,Tm 纳米晶体选择性地沉积在 BiOCl(110)晶面上可以大大提高染料降解中的光催化性能。这种增强归因于两个效应:(1)BiOCl(110)晶面从 NaYF:Yb,Tm 中具有更强的 UV 发射吸收能力,从而产生更多的光致电荷载流子,这是由于更窄的带隙;(2)光生电荷载流子到 BiOCl(110)反应面的扩散距离更短,这是由于不同晶面之间的空间电荷分离促进了表面催化反应。这项工作强调了上转换纳米晶体-半导体杂化结构的合理界面设计,以增强光催化中的能量转移。

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