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Na2Ti6O13@TiO2 core-shell nanorods with controllable mesoporous shells and their enhanced photocatalytic performance

机译:具有可控介孔壳的Na2Ti6O13 @ TiO2核壳纳米棒及其增强的光催化性能

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In this study, dispersive and free-standing Na2Ti6O13 nanorods with diameter of about 500 nm and length of about 10 mu m were synthesized by the molten salt method. The Na2Ti6O13@TiO2 (denoted as TTO) core-shell nanorods were fabricated by a versatile kinetics controlled coating method. The TiO2 shells were uniform and mesoporous with exposed {101} facets. The thickness of TiO2 shells can be well controlled by the content of Ti(OC4H9)(4), ranging from 0 nm, 15 nm, 60 nm to 70 nm corresponding to Na2Ti6O13, 0.25-TTO, 0.50-TTO and 0.75-TTO nanorods respectively. The crystalline phases, microstructure, porosity, photoabsorption and photocatalytic performance of all the samples were investigated systematically. The nanoscale heterojunction structure between Na2Ti6O13 and TiO2, reductive TiO2 {101} facets and high aspect ratio Na2Ti6O13 nanorods resulted in the enhanced photocatalytic performance of TTO nanorods. The optimized thickness of TiO2 shells were about 60 nm for 0.50-TTO nanorods, which possessed superior BET surface area, optical absorption and photocatalytic performance. (C) 2017 Elsevier B.V. All rights reserved.
机译:在这项研究中,通过熔融盐法合成了直径约500 nm,长度约10μm的分散且独立的Na2Ti6O13纳米棒。 Na2Ti6O13 @ TiO2(表示为TTO)核壳纳米棒是通过通用的动力学控制涂层方法制备的。 TiO2壳是均匀的,并且介孔具有暴露的{101}小面。 TiO2壳的厚度可以通过Ti(OC4H9)(4)的含量很好地控制,范围为0 nm,15 nm,60 nm至70 nm,分别对应于Na2Ti6O13、0.25-TTO,0.50-TTO和0.75-TTO纳米棒分别。系统地研究了所有样品的晶相,微观结构,孔隙率,光吸收和光催化性能。 Na2Ti6O13和TiO2之间的纳米级异质结结构,还原性TiO2 {101}面和高纵横比的Na2Ti6O13纳米棒导致TTO纳米棒的光催化性能增强。 0.50-TTO纳米棒的TiO2壳的最佳厚度约为60 nm,具有更好的BET表面积,光吸收和光催化性能。 (C)2017 Elsevier B.V.保留所有权利。

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