首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >A study on upconversion UV-vis-NIR responsive photocatalytic activity and mechanisms of hexagonal phase NaYF4:Yb~(3+),Tm~(3+)@TiO2 core-shell structured photocatalyst
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A study on upconversion UV-vis-NIR responsive photocatalytic activity and mechanisms of hexagonal phase NaYF4:Yb~(3+),Tm~(3+)@TiO2 core-shell structured photocatalyst

机译:六方相NaYF4:Yb〜(3 +),Tm〜(3 +)@ TiO2核壳结构光催化剂的上转换UV-vis-NIR响应光催化活性的研究

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摘要

A new core-shell structured composite consisting of upconversion hexagonal phase NaYF4:Yb~(3+),Tm~(3+) (simply named NaYF4) microrods and UV-vis-NIR driven anatase TiO2 nanosheets with exposed high-reactive {001} facets has been prepared and shown to be an advanced NIR and sunlight activated photocatalyst. To understand the nature of NIR-driven photocatalysis of NaYF4@TiO2, various analysis methods are conducted. Structure analysis proved that TiO2 is closely attached on the surface of NaYF4 and can absorb all the converted NIR light (980 nm laser) for photocatalysis. As a result, the new photocatalyst gives higher photocatalytic activity in decomposing phenol and Rhodamine B (RhB) than their physical mixture and pure TiO2 under the NIR and simulated sunlight irradiation. High-reactive hydroxyl radicals ('OH) analysis confirmed the superiority of the core-shell structure and the significant role of the upconversion material in using the NIR light to improve the photocatalytic activity of as-prepared TiO2. Finally, a mechanism for NIR driven photocatalysis is proposed which will help to improve the structure design and functionality of new type of photocatalysts.
机译:一种新的核-壳结构复合材料,由上转换六方相NaYF4:Yb〜(3 +),Tm〜(3 +)(简称NaYF4)微棒和UV-vis-NIR驱动的锐钛矿型TiO2纳米片组成,具有暴露的高反应性{001 }方面已准备就绪,并显示为先进的NIR和阳光活化的光催化剂。为了了解NIR驱动的NaYF4 @ TiO2光催化的性质,进行了各种分析方法。结构分析表明,TiO2紧密附着在NaYF4的表面上,并可以吸收所有转换后的NIR光(980 nm激光)进行光催化。结果,在近红外和模拟阳光照射下,新型光催化剂在分解苯酚和若丹明B(RhB)方面比其物理混合物和纯TiO2具有更高的光催化活性。高反应性羟基自由基('OH)分析证实了核-壳结构的优越性以及上转换材料在使用NIR光改善制备的TiO2的光催化活性方面的重要作用。最后,提出了一种近红外驱动光催化的机理,将有助于改善新型光催化剂的结构设计和功能。

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