太阳能电池用Bi2S3/TiO2异质结构复合薄膜性能的提高

IF 3.261
Saket Mathur , Victoria Bishop , Andrew Swindle , Wei Wei
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引用次数: 0

摘要

日常能源生产正在转向可再生能源,因为这些能源在经济上更可行,同时污染更少;太阳能已成为可再生能源的主要来源之一。然而,它目前依靠超纯硅锭来生产商业硅光伏,这阻碍了与不可再生能源生产竞争的电力成本。染料敏化太阳能电池(DSSCs)是硅基电池的一种可行的低成本替代品,它制造起来更容易、更便宜,因为它们不需要昂贵和精致的原材料。此外,它们可以制成半柔性的,从而允许更多种类的应用。DSSC由三部分组成:光电极、电解质和反电极。当暴露在入射光下时,光电极中的复合光敏剂释放电子,这些电子被传输到外部负载,使光电极处于氧化状态。电子被反电极收集并用于还原电解质。这个带电的电解质然后减少带正电的光电极,允许这个过程重新开始。为了提高这一过程的效率,我们探索了使用硫化铋(Bi2S3)和氧化钛(TiO2)复合材料作为光电极材料,并研究了它们对DSSC效率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced performance of Bi2S3/TiO2 heterostructure composite films for solar cell applications
Day to day energy production is shifting towards renewable energy sources as these sources become more economically viable while being less polluting to operate; solar energy has become one of the major sources of renewable energy. However, it currently relies on ultra-pure silicon ingots to produce commercial silicon photovoltaics, which prevents the cost of electricity being produced to compete with non-renewable energy production. A viable low-cost alternative for silicon based cells would be dye-sensitized solar cells (DSSCs), which are easier and cheaper to manufacture as they do not require expensive and delicate raw materials to make. Moreover, they could be made semi-flexible which allows for a greater variety of applications. A DSSC consists of three components, a photo-electrode, an electrolyte and a counter-electrode. When exposed to incident light, the complex photosensitizers in the photoelectrode release electrons which are transported to the external load, leaving the photoelectrode in an oxidized state. The electrons are collected by the counter electrode and used to reduce the electrolyte. This charged electrolyte then reduces the positively charged photoelectrode, allowing the process to begin again. To improve the efficiency of this process, we explore the use of bismuth sulfide (Bi2S3) and titanium oxide (TiO2) composite as photoelectrode material and investigate their impact on the efficiency of DSSC.
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