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Nanostructured tungsten trioxide photoanodes for solar energy conversion

机译:用于太阳能转换的纳米结构三氧化钨光阳极

摘要

Nanostructured tungsten trioxide (WO) photoelectrodes are potential candidates for the anodic portion of an integrated solar water-splitting device that generates hydrogen fuel and oxygen from water. These nanostructured materials can potentially offer improved performance in photooxidation reactions compared to unstructured materials because of enhancements in light scattering, increases in surface area, and their decoupling of the directions of light absorption and carrier collection. To evaluate the presence of these effects and their contributions toward energy conversion efficiency, a variety of nanostructured WO photoanodes were synthesized by electrodeposition within nanoporous templates and by anodization of tungsten foils. A robust fabrication process was developed for the creation of oriented WO nanorod arrays, which allows for control nanorod diameter and length. Films of nanostructured WO platelets were grown via anodization, the morphology of the films was controlled by the anodization conditions, and the current-voltage performance and spectral response properties of these films were studied. The observed photocurrents were consistent with the apparent morphologies of the nanostructured arrays. Measurements of electrochemically active surface area and other physical characteristics were correlated with observed differences in absorbance, external quantum yield, and photocurrent density for the anodized arrays. The capability to quantify these characteristics and relate them to photoanode performance metrics can allow for selection of appropriate structural parameters when designing photoanodes for solar energy conversion.
机译:纳米结构的三氧化钨(WO)光电极是集成的太阳能水分解装置的阳极部分的潜在候选物,该装置可从水中产生氢燃料和氧。与未结构化的材料相比,由于光散射的增强,表面积的增加以及它们在光吸收和载流子收集方向上的解耦,这些纳米结构的材料与未结构化的材料相比可以潜在地在光氧化反应中提供更高的性能。为了评估这些效应的存在及其对能量转换效率的贡献,通过在纳米多孔模板中进行电沉积并通过钨箔的阳极氧化合成了多种纳米结构的WO光阳极。开发了用于创建定向WO纳米棒阵列的鲁棒制造工艺,该工艺可控制纳米棒的直径和长度。通过阳极氧化生长纳米结构的WO血小板膜,通过阳极氧化条件控制膜的形貌,并研究它们的电流-电压性能和光谱响应特性。观察到的光电流与纳米结构阵列的表观形态一致。电化学活性表面积和其他物理特性的测量与阳极氧化阵列的吸光度,外部量子产率和光电流密度的观察差异相关。量化这些特性并将其与光电阳极性能指标相关联的能力可以在设计用于太阳能转换的光电阳极时选择合适的结构参数。

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    Wiggenhorn David Craig;

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  • 年度 2014
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