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Phase transformations, vacancy formation and variations of optical and photocatalytic properties in TiO2-ZnO composites by high-pressure torsion

机译:通过高压扭转,TiO2-ZnO复合材料中的相变,空位形成和光学和光催化性能的变化

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摘要

TiO2 and ZnO, two semiconductors with promising optical properties, are considered as potential candidates for solar and photocatalytic applications. Although chemical methods have been primarily used to enhance the optical properties of these oxides, the current authors recently reported enhanced photocatalytic performance of pure TiO2 and ZnO by plastic straining due to the generation of high-pressure phases and oxygen vacancies. In this study, to improve the optical properties further, large fractions of ZnO/TiO2 interphase boundaries are also introduced by application of high-pressure torsion (HPT) straining to a mixture of anatase-TiO2 and wurtzite-ZnO powders. It was found that the amounts of oxygen vacancies and nanograined high-pressure TiO2-II and rocksalt-ZnO phases increase with increasing plastic strain. Moreover, due to the plastic strain effect, the rutile-TiO2 phase is formed at room temperature, which is at least 600 K below the reported anatase-to-rutile transition temperature. These structural features, together with the formation of large fraction of interphase boundaries, lead to electron spin resonance, optical bandgap narrowing, diminishing of the band-to-band photoluminescence and thus, improvement of photocatalytic hydrogen generation. Despite improvements in the photocatalytic activity of TiO2-ZnO composites after large straining, photocatalytic activity becomes poor by processing at ultra-large strains due to the significant reduction in crystallinity.
机译:TiO2和ZnO,两个具有有前途光学性质的半导体,被认为是太阳能和光催化应用的潜在候选者。虽然化学方法主要用于增强这些氧化物的光学性质,但是当前作者最近报道了由于高压相和氧空位的产生而通过塑性紧张增强了纯TiO2和ZnO的光催化性能。在该研究中,为了改善光学性质,还通过施加到阳离子酶-TiO2和Wurtzite-ZnO粉末的混合物中的高压扭转(HPT)施加的高压扭转(HPT)来引入大部分的ZnO / TiO2间隔边界。发现氧空位量和纳米甲基高压TiO2-II和岩石 - ZnO相随着塑性菌株的增加而增加。此外,由于塑性应变效应,在室温下形成金红石-TiO2相,其在报告的锐钛矿对金朗过渡温度以下至少600 k。这些结构特征与形成大部分的相干边界,导致电子自旋共振,光学带隙缩小,带带光发光的缩短,从而改善光催化氢气。尽管在大紧张后TiO 2-ZnO复合材料的光催化活性改善,但由于结晶度显着降低,通过在超大菌株下加工变差。

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