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Effects of Matching Facet Pairs of TiO2 on Photoelectrochemical Water Splitting Behaviors

机译:TiO2在光电化学水分裂行为中匹配方面对的影响

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Engineering crystal facets have been proved as one of the most promising strategies for promoting photocatalytic performance of titanium dioxide (TiO2). The earlier research in this field focused on trying to obtain as high ratio of the high energy {001} facet as possible, while later found that the co-existence of facets is more beneficial. However, controlling crystals to expose suitable facet pairs and facet ratios remains challenging. In this work, we not only comprehensively match possible low-index facets such as {101}-{001} and {010}-{001} facet pairs, but also systematically tune their ratios. Moreover, these faceted particles can be directly grown onto the transparent conductive substrate, which can be directly used as a photoanode. So, their intrinsic behaviors can be precisely evaluated without interference from other exogenous factors such as binders, additives, or assembly skills. Various characterization techniques reveal that both the types of facet pairs and the ratios of facets play crucial roles on photocatalytic behaviors, due to the different electron affinity and dissociative adsorption ability of water molecules on a particular facet. Charge transport and surface chemistry have been thoroughly investigated to identify the underlying mechanism. This work sheds light on a material design strategy considering a suitable match of facet pairs for optimizing photocatalytic performance for a wide variety of applications.
机译:工程水晶面被证明是促进二氧化钛(TiO2)的光催化性能最有前途的策略之一。本领域的早期研究侧重于试图获得尽可能高的高能{001}小平面的比例,而后来发现面部的共存更有益。然而,控制晶体暴露合适的面对和面比仍然具有挑战性。在这项工作中,我们不仅可以综合地匹配诸如{101} - {001}和{010} - {001}面对的可能的低索引面部,而且系统地调整其比率。此外,这些刻面颗粒可以直接生长到透明导电基板上,这可以直接用作光潮。因此,可以精确地评估其内在行为而不会从其他外源因素(如粘合剂,添加剂或组装技能)干扰。各种表征技术表明,由于水分子对特定方面的不同电子亲和力和分离吸附能力,小面对与小件的类型对光催化行为的关键作用起着至关重要的作用。已经彻底调查了电荷运输和表面化学以识别潜在机制。这项工作揭示了考虑到各个方面配对的合适匹配的材料设计策略,以优化各种应用的光催化性能。

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