首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Highly active Ta2O5 microcubic single crystals: facet energy calculation, facile fabrication and enhanced photocatalytic activity of hydrogen production
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Highly active Ta2O5 microcubic single crystals: facet energy calculation, facile fabrication and enhanced photocatalytic activity of hydrogen production

机译:高活性Ta2O5微立方单晶:晶面能量计算,简便的制造方法和增强的氢生产光催化活性

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摘要

This work has identified Ta2O5 {001} facets as the high-energy facet by first-principles theory, and demonstrated the first example of tantalum oxide facet engineering. Ta2O5 microcubic single crystals (MCSCs) with a large percentage exposure of highly active facets take advantage of the unique crystal structure and cubic morphology of the precursor tantalum oxychlorides, as well as the characteristics of a topological transformation synthesis. In our protocol, the heat treatment of the TaO2.18Cl0.64 microcube precursor only enables an intra-layer transition but preserves the {001} facets due to the strong 180 degrees Ta-O-Ta structure between layers. Consequently, mesoporous Ta2O5 MCSCs with highenergy facet exposure are produced. The as-obtained Ta2O5 MCSCs exhibit a remarkably enhanced photocatalytic hydrogen production activity for their specific surface area due to the enlarged percentage of exposed {001} facets, which possess the largest density and highest quality of hyperactive sites for the photocatalytic reaction. The results here may provide a plausible approach for both the facet engineering of metal oxides with similar layer structures and the enhancement of Ta2O5 chemical activities.
机译:这项工作通过第一性原理将Ta2O5 {001}刻面识别为高能刻面,并展示了氧化钽刻面工程的第一个实例。 Ta2O5微立方单晶(MCSC)具有高百分比的高活性小面暴露,它利用了前体三氯氧化钽的独特晶体结构和立方形态以及拓扑转换合成的特性。在我们的协议中,TaO2.18Cl0.64微立方前驱体的热处理仅能实现层内过渡,但由于各层之间的牢固180度Ta-O-Ta结构而保留了{001}面。因此,产生了具有高能面暴露的中孔Ta2O5 MCSC。如此获得的Ta2O5 MCSC由于其暴露的{001}晶面的百分比增加而显着提高了其比表面积的光催化制氢活性,而这些面具有最大的密度和最高的光催化反应活性位。此处的结果可能为具有相似层结构的金属氧化物的面工程以及提高Ta2O5化学活性提供一种可行的方法。

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