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首页> 外文期刊>Nano Energy >Probing interfacial energetics and charge transfer kinetics in semiconductor nanocomposites: New insights into heterostructured TiO2/BiVO4 photoanodes
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Probing interfacial energetics and charge transfer kinetics in semiconductor nanocomposites: New insights into heterostructured TiO2/BiVO4 photoanodes

机译:半导体纳米复合材料中的界面能量和电荷转移动力学:异质结构TiO2 / Bivo4光电池中的新洞察

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Heterostructured nanocomposites offer promise for creating systems exhibiting functional properties that exceed those of the isolated components. For solar energy conversion, such combinations of semiconducting nanomaterials can be used to direct charge transfer along pathways that reduce recombination and promote efficient charge extraction. However, interfacial energetics and associated kinetic pathways often differ significantly from predictions derived from the characteristics of pure component materials, particularly at the nanoscale. Here, the emergent properties of TiO2/BiVO4 nanocomposite photoanodes are explored using a combination of X-ray and optical spectroscopies, together with photoelectrochemical (PEC) characterization. Application of these methods to both the pure components and the fully assembled nanocomposites reveals unpredicted interfacial energetic alignment, which promotes ultrafast injection of electrons from BiVO4 into TiO2. Physical charge separation yields extremely long-lived photoexcited states and correspondingly enhanced photoelectrochemical functionality. This work highlights the importance of probing emergent interfacial energetic alignment and kinetic processes for understanding mechanisms of solar energy conversion in complex nanocomposites.
机译:异质结构纳米复合材料提供了创建具有超过分离成分的功能性质的系统的承诺。对于太阳能转换,半导体纳米材料的这种组合可用于沿着减少重组和促进有效电荷提取的途径指导电荷转移。然而,界面能量和相关的动力学途径通常与纯组分材料特性的预测显着不同,特别是在纳米级。这里,使用X射线和光谱分子的组合以及光电化学(PEC)表征探索TiO2 / BIVO4纳米复合光阳极的紧急性质。这些方法在纯组分和完全组装的纳米复合材料中的应用揭示了非预测的界面能量对准,这促进了从BIVO4进入TiO 2的超快注射电子。物理电荷分离产生极其长期的光透明状态,相应地增强了光电化学功能。这项工作突出了突出界面能量对准和动力学过程的重要性,以了解复合纳米复合材料中太阳能转化机制的理解机制。

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