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首页> 外文期刊>Fullerenes, nanotubes, and carbon nanostructures >Dye-sensitized solar cell with single-walled carbon nanotube thin film prepared by an electrolytic micelle disruption method as the counterelectrode
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Dye-sensitized solar cell with single-walled carbon nanotube thin film prepared by an electrolytic micelle disruption method as the counterelectrode

机译:电解胶束破坏法制备的单壁碳纳米管薄膜染料敏化太阳能电池为反电极

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摘要

Several thin films of single-walled carbon nanotube (SWCNT) were prepared on ITO glasses by electrolytic micelle disruption methods using surfactants bearing a ferrocenyl moiety (1a and 1b). Surfactant 1a has a polyethylene glycol unit as the hydrophilic moiety, while surfactant 1b has an ammonium salt unit. The surfaces of the resulting films formed by the electrolysis methods were confirmed by SEM and AFM measurements, and then these images clearly exhibited that the entire surface of the ITO glass was uniformly covered with SWCNT. The thicknesses of the resulting films were estimated by the SEM images of cross-sections of the film. For example, the thickness of the film formed by the electrolysis for 12 hours was ca. 4500 angstrom. Besides the SEM images of the cross-sections of the resulting films, the UV-Vis spectroscopy showed clearly that the film thickness increased with electrolysis time. The photovoltaic performance of dye-sensitized solar cells (DSCs) using the resulting thin films as a counterelectrode material instead of a common platinized counterelectrode was investigated. As a result, the highest solar-to-electric energy conversion efficiency among the present investigations was found to be obtained in the case with the thin film formed by the electrolysis with surfactant 1a for 36 hours.
机译:使用带有二茂铁基部分(1a和1b)的表面活性剂,通过电解胶束破坏方法在ITO玻璃上制备了几层单壁碳纳米管(SWCNT)薄膜。表面活性剂1a具有聚乙二醇单元作为亲水部分,而表面活性剂1b具有铵盐单元。通过SEM和AFM测量确认通过电解方法形成的所得膜的表面,然后这些图像清楚地显示出ITO玻璃的整个表面被SWCNT均匀地覆盖。通过膜的横截面的SEM图像估计所得膜的厚度。例如,通过电解12小时形成的膜的厚度为约2μm。 4500埃。除了所得膜的横截面的SEM图像以外,UV-Vis光谱清楚地表明,膜厚度随电解时间而增加。研究了将所得薄膜用作对电极材料而不是普通的镀铂对电极的染料敏化太阳能电池(DSC)的光伏性能。结果,发现在通过用表面活性剂1a电解36小时而形成的薄膜的情况下,在本研究中获得了最高的太阳能-电能转换效率。

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