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S-doped Na2Ti6O13@TiO2 core-shell nanorods with enhanced visible light photocatalytic performance

机译:S掺杂的Na2Ti6O13 @ TiO2核壳纳米棒具有增强的可见光光催化性能

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S-doped Na2Ti6O13@TiO2 (S-TTO) core-shell nanorods, with exposed anatase TiO2 {101} facets, were synthesized by a facile calcination method. It was found that the addition of thiourea as the sulfur precursor was beneficial for the formation of anatase TiO2 with a better crystallinity and the doped sulfur atoms favorably stabilized the anatase structure. The substitution of Ti4+ by S6+ in the lattice of S-TTO gave rise to the visible light response and increased the amount of active groups typically as a hydroxyl radical adsorbed onto the catalyst surface. With the formation of the Ti-O-S bond, partial electrons could be transferred from S to O atoms. The electron-deficient S atoms might capture e(-) and thus inhibit the recombination of photogenerated electron-hole pairs. Meanwhile, a closely contacted interface was formed between Na2Ti6O13 and anatase TiO2, resulting in a nanoscale heterojunction structure to speed up the separation rate of photogenerated charge carriers. The exposed anatase {101} facets could act as possible reservoirs of the photogenerated electrons, yielding a highly reactive surface for the reduction of O-2 to O-2(center dot-) and thus the decrease of recombination probability of electron-hole pairs. In addition, the anisotropically shaped titanate nanorods provided a pathway for the quick transport of charge carriers throughout the longitudinal direction. The combined effects of S doping, nano-heterojunction formation and morphology engineering led to an obviously enhanced photocatalytic performance for the degradation of methylene blue (MB) solution under visible light irradiation. The corresponding photocatalytic mechanism was investigated and discussed in detail. The present work may provide an insight into the fabrication of delicate composite photocatalysts with excellent performance.
机译:通过一种简单的煅烧方法合成了掺有锐钛矿型TiO2 {101}面的S掺杂Na2Ti6O13 @ TiO2(S-TTO)核壳纳米棒。发现添加硫脲作为硫前体有利于形成具有更好结晶度的锐钛矿TiO 2,并且掺杂的硫原子有利地稳定了锐钛矿结构。在S-TTO晶格中用S6 +取代Ti4 +引起可见光响应,并增加了通常作为吸附在催化剂表面的羟基自由基的活性基团的数量。随着Ti-O-S键的形成,部分电子可以从S原子转移到O原子。缺电子的S原子可能捕获e(-),因此抑制了光生电子-空穴对的重组。同时,Na2Ti6O13和锐钛矿型TiO2之间形成紧密接触的界面,从而形成纳米级异质结结构,从而加快了光生载流子的分离速度。暴露的锐钛矿{101}面可作为光生电子的可能储库,产生高反应性的表面以将O-2还原为O-2(中心点),从而降低电子-空穴对的重组概率。另外,各向异性形状的钛酸酯纳米棒提供了在整个纵向方向上快速运输载流子的途径。 S掺杂,纳米异质结的形成和形态工程学的综合作用导致可见光照射下亚甲基蓝(MB)溶液降解的光催化性能明显增强。研究并讨论了相应的光催化机理。本工作可以提供对具有优异性能的精细复合光催化剂的制造的见解。

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