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具有增强的可见光下光电化学水分解活性的ZnO支架CdS纳米结构光阳极的制备

Fabrication of ZnO Scaffolded CdS Nanostructured Photoanodes with Enhanced Photoelectrochemical Water Splitting Activity under Visible Light.

作者信息

Rokade Avinash, Rahane Ganesh K, Živković Aleksandar, Rahane Swati N, Tarkas Hemant S, Hareesh K, de Leeuw Nora H, Sartale Shrikrishna Dattatraya, Dzade Nelson Y, Jadkar Sandesh R, Rondiya Sachin R

机构信息

Department of Physics, Savitribai Phule Pune University, Pune 411007, India.

Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India.

出版信息

Langmuir. 2024 Apr 2;40(13):6884-6897. doi: 10.1021/acs.langmuir.3c03817. Epub 2024 Mar 22.

Abstract

CdS, characterized by its comparatively narrow energy band gap (∼2.4 eV), is an appropriate material for prospective use as a photoanode in photoelectrochemical water splitting. Regrettably, it encounters several obstacles for practical and large-scale applications, including issues such as bulk carrier recombination and diminished conductivity. Here, we have tried to address these challenges by fabricating a novel photoelectrode (ZnO/CdS) composed of one-dimensional ZnO nanorods (NRs) decorated with two-dimensional CdS nanosheets (NSs). A facile two-step chemical method comprising electrodeposition along with chemical bath deposition is employed to synthesize the ZnO NRs, CdS NSs, and ZnO/CdS nanostructures. The prepared nanostructures have been investigated by UV-visible absorption spectroscopy, X-ray diffraction, Raman spectroscopy, transmission electron microscopy (TEM), and scanning electron microscopy. The fabricated ZnO/CdS nanostructures have shown enhanced photoelectrochemical properties due to the improvement of the semiconductor junction surface area and thereby enhanced visible light absorption. The incorporation of CdS NSs has been further found to promote the rate of the charge separation and transfer process. Subsequently, the fabricated ZnO/CdS photoelectrodes achieved a photocurrent conversion efficiency 3 times higher than that of a planar ZnO NR photoanode and showed excellent performance under visible light irradiation. The highest applied bias photon-to-current conversion efficiency (% ABPE) of about ∼0.63% has been obtained for the sample with thicker CdS NSs on ZnO NRs with a photocurrent density of ∼1.87 mA/cm under AM 1.5 G illumination. The newly synthesized nanostructures further demonstrate that the full photovoltaic capacity of nanomaterials is yet to be exhausted.

摘要

硫化镉(CdS)的特征在于其相对较窄的能带隙(约2.4电子伏特),是一种适合用作光电化学水分解光阳极的材料。遗憾的是,它在实际大规模应用中遇到了几个障碍,包括体载流子复合和导电性降低等问题。在此,我们试图通过制造一种新型光电极(ZnO/CdS)来应对这些挑战,该光电极由一维ZnO纳米棒(NRs)装饰二维CdS纳米片(NSs)组成。采用一种简便的两步化学方法,包括电沉积和化学浴沉积,来合成ZnO NRs、CdS NSs和ZnO/CdS纳米结构。通过紫外可见吸收光谱、X射线衍射、拉曼光谱、透射电子显微镜(TEM)和扫描电子显微镜对制备的纳米结构进行了研究。由于半导体结表面积的改善,从而增强了可见光吸收,所制备的ZnO/CdS纳米结构表现出增强的光电化学性能。进一步发现,CdS NSs的掺入促进了电荷分离和转移过程的速率。随后,所制备的ZnO/CdS光电极实现的光电流转换效率比平面ZnO NR光阳极高3倍,并在可见光照射下表现出优异的性能。对于在ZnO NRs上具有较厚CdS NSs的样品,在AM 1.5 G光照下光电流密度约为1.87 mA/cm²时,获得了约0.63%的最高施加偏压光子到电流转换效率(%ABPE)。新合成的纳米结构进一步证明,纳米材料的全部光伏能力尚未耗尽。

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