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Electrodeposition of CdSe coatings on ZnO nanowire arrays for extremely thin absorber solar cells

机译:ZnO纳米线阵列上CdSe涂层的电沉积,用于极薄的吸收器太阳能电池

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We report on electrodeposition of CdSe coatings onto ZnO nanowire arrays and determine the effect of processing conditions on material properties such as morphology and microstructure. CdSe-coated ZnO nanowire arrays have potential use in extremely thin absorber (ETA) solar cells, where CdSe absorbs visible light and injects photoexcited electrons into the ZnO nanowires. We show that room-temperature electrodeposition enables growth of CdSe coatings that are highly crystalline, uniform, and conformal with precise control over thickness and microstructure. X-ray diffraction and transmission electron microscopy show nanocrystalline CdSe in both hexagonal and cubic phases with grain size ~5 nm. Coating morphology depends on electrodeposition current density. Uniform and conformal coatings were achieved using moderate current densities of ~2 mAcm~(-2) for nanowires with roughness factor of ~10, while lower current densities resulted in sparse nucleation and growth of larger, isolated islands. Electrodeposition charge density controls the thickness of the CdSe coating, which was exploited to investigate the evolution of the morphology at early stages of nucleation and growth. UV-vis transmission spectroscopy and photoelectrochemical solar cell measurements demonstrate that CdSe effectively sensitizes ZnO nanowires to visible light.
机译:我们报告了CdSe涂层在ZnO纳米线阵列上的电沉积,并确定了加工条件对材料性能(如形态和微观结构)的影响。涂有CdSe的ZnO纳米线阵列在超薄吸收器(ETA)太阳能电池中具有潜在用途,其中CdSe吸收可见光并将光激发电子注入ZnO纳米线。我们表明,室温电沉积可以使CdSe涂层的生长变得高度结晶,均匀和共形,并且可以精确控制厚度和微观结构。 X射线衍射和透射电镜观察发现六方相和立方相中的纳米晶CdSe的晶粒尺寸约为5nm。涂层的形态取决于电沉积电流密度。对于粗糙度系数约为10的纳米线,使用中等的电流密度〜2 mAcm〜(-2)可获得均匀和共形的涂层,而较低的电流密度会导致成核稀疏和较大的孤立岛的生长。电沉积电荷密度控制CdSe涂层的厚度,该涂层被用于研究成核和生长早期阶段的形态演变。紫外可见光谱和光电化学太阳能电池测量表明,CdSe有效地使ZnO纳米线对可见光敏感。

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