Facile Synthesis of Ultrathin 2D Tungsten Oxide Nanosheet as a Next-Generation Material for Enhanced Solar Conversion Efficiency

纳米片 材料科学 色素敏化染料 高分辨率透射电子显微镜 X射线光电子能谱 纳米技术 能量转换效率 拉曼光谱 化学工程 扫描电子显微镜 石墨烯 傅里叶变换红外光谱 氧化物 透射电子显微镜 光电子学 光学 化学 电解质 复合材料 物理化学 工程类 物理 冶金 电极
作者
Mohammad Muaz,Farasha Sama,Tokeer Ahmad,M. Shahid,Absar Ahmad
出处
期刊:Journal of Physical Chemistry C [American Chemical Society]
被引量:1
标识
DOI:10.1021/acs.jpcc.4c06897
摘要

The global energy crisis and dependency on fossil fuels have compelled us to rely on renewable energy-based technology, a more sustainable, eco-friendly energy source. Dye-sensitized solar cells (DSSCs) are one such promising technology. Owing to its unique features, the two-dimensional (2D) tungsten oxide nanosheet is a top-notch photoactive material for DSSC applications. However, their extensive commercialization is limited by cost-efficient and environmentally benign synthesis of an ultrathin 2D nanosheets. In this work, an easily scalable and high-yield mechanochemical synthesis of ultrathin nanosheets has been proposed at ambient temperature. The phase evolution and formation mechanism of the WO3 nanosheet has been investigated by X-ray diffraction (XRD) and scanning electron microscopy (SEM) images. The as-synthesized WO3 nanosheets were structurally characterized by multiple techniques like XRD, Fourier-transform infrared (FTIR), X-ray photoelectron spectroscopy (XPS), Raman, and ultraviolet–visible (UV–vis), while the nanoplate-like surface morphology was characterized by microscopic techniques like field emission scanning electron microscopy (FESEM), high-resolution transmission electron microscope (HRTEM), and atomic force microscopy (AFM). The synthesized nanosheet was combined with a highly conductive graphene sheet (GS) in different doping percentages, and such modified hybrid systems were tested for DSSC application. Under the simulation of one-sun illumination, the DSSC using pristine photoelectrode material demonstrated a solar-power conversion efficiency of 9.31%, while the optimal doping of 0.6 wt % GS exhibited excellent performance with the highest power conversion efficiency of 10.47%, improved IPCE, and long term stability. A device prototype of the DSSC was developed utilizing the same, which continued to perform well for almost 3 months with a meagre loss in its performance. This work provides a promising approach for increasing the efficiency of solar cells by altering the WO3 photoelectrode with GS, which acted as a next-generation material for commercializing DSSCs.

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