Sheng Wenjun, Shi Tielin, Sun Bo, Jiang Ting, Liao Guanglan
J Nanosci Nanotechnol. 2015 Feb;15(2):1331-7. doi: 10.1166/jnn.2015.8997.
We demonstrate the fabrication of three dimensional hierarchical ZnO/Si nanowire core-shell structure, which is used as a high surface area photoelectrode in photoelectrochemical cells for solar water splitting. This structure is fabricated via a two-step solution process: fabricating vertical aligned silicon nanowires via metal assisted etching method and then growing ZnO nanowires on the silicon nanowires via hydrothermal method. Transmission electron microscopy, scanning electron microscopy, spectrometer and X-ray diffractmeter are employed to characterize the hierarchical structure. The surface area of the hierarchical structure increases significantly compared to the simplex nanowire structure, which can substantially promote the photoelectrochemical reactions. The core-shell characteristic is beneficial to the charge carrier separation and the silicon nanowire backbones can work as the charge transfer channels, which contribute to the efficiency improvement. The experimental results indicate that the photocurrent density and the maximum conversion efficiency of the hierarchical structure photoelectrode have increased obviously, confirming that this hierarchical structure is more suitable for the application of photoelectrode than the ZnO nanowires/planar silicon structure.
我们展示了三维分级ZnO/Si纳米线核壳结构的制备,该结构用作光电化学电池中用于太阳能水分解的高表面积光电极。这种结构通过两步溶液法制备:通过金属辅助蚀刻法制备垂直排列的硅纳米线,然后通过水热法在硅纳米线上生长ZnO纳米线。采用透射电子显微镜、扫描电子显微镜、光谱仪和X射线衍射仪对分级结构进行表征。与单纯纳米线结构相比,分级结构的表面积显著增加,这可大幅促进光电化学反应。核壳特性有利于电荷载流子分离,且硅纳米线主干可作为电荷转移通道,这有助于提高效率。实验结果表明,分级结构光电极的光电流密度和最大转换效率明显提高,证实这种分级结构比ZnO纳米线/平面硅结构更适合用于光电极应用。