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首页> 外文期刊>Nanotechnology >Core–shell photoanode developed by atomic layer deposition of Bi_2O_3 on Si nanowires for enhanced photoelectrochemical water splitting
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Core–shell photoanode developed by atomic layer deposition of Bi_2O_3 on Si nanowires for enhanced photoelectrochemical water splitting

机译:通过在Si纳米线上的Bi_2O_3原子层沉积开发的核-壳光电阳极,用于增强光电化学水分解

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摘要

Core–shell nanowire (NW) arrays, which feature a vertically aligned n-type Si NW core and a ptype α-Bi_2O_3 shell, are developed as a highly efficient photoanode that is suitable for water splitting. The morphology and structure of the heterostructure were characterized by scanning electron microscopy (SEM), energy-dispersive x-ray spectroscopy (EDS), high-resolution transmission electron microscopy (HRTEM), x-ray photoelectron spectroscopy (XPS), and x-ray diffraction (XRD). The deposition of Bi_2O_3 nanolayers on the surface of the smooth Si NWs causes the surface of the NWs to become rough. The as-prepared core–shell NW photoelectrode has a relatively low reflectance in the visible light region, suggesting good light absorption. The core–shell NW arrays show greatly improved photoelectrochemical water-splitting performance. Photoelectrochemical stability for over 16 h under constant light illumination and fixed bias potential was achieved, illustrating the good stability of this core–shell NW photoanode. These Si/Bi_2O_3 core–shell NW arrays effectively combine the light absorption ability of the Si NWs and the wide energy gap and chemical stability of Bi_2O_3 for water splitting. This study furthers the attempts to design photoanodes from low-cost, abundant materials for applications in water splitting and photovoltaics.
机译:核-壳纳米线(NW)阵列是一种垂直排列的n型Si NW核和p型α-Bi_2O_3壳,是一种适用于水分解的高效光电阳极。通过扫描电子显微镜(SEM),能量色散X射线光谱(EDS),高分辨率透射电子显微镜(HRTEM),X射线光电子能谱(XPS)和X-射线表征了异质结构的形态和结构。射线衍射(XRD)。 Bi_2O_3纳米层在光滑Si NWs表面的沉积会导致NWs表面变得粗糙。所制备的核壳型NW光电极在可见光区域的反射率相对较低,表明光吸收良好。核-壳NW阵列显示出大大改善的光电化学水分解性能。在恒定光照和固定偏置电势下,在超过16 h内的光电化学稳定性得以实现,说明该核壳型NW光电阳极具有良好的稳定性。这些Si / Bi_2O_3核壳型NW阵列有效地结合了Si NWs的光吸收能力和Bi_2O_3的宽能隙以及用于水分解的化学稳定性。这项研究进一步尝试了用低成本,丰富的材料设计光阳极的应用,以用于水分解和光伏发电。

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