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采用少层过渡金属二硫属化物的肖特基太阳能电池,用于大规模制造半透明柔性发电机。

Schottky solar cell using few-layered transition metal dichalcogenides toward large-scale fabrication of semitransparent and flexible power generator.

作者信息

Akama Toshiki, Okita Wakana, Nagai Reito, Li Chao, Kaneko Toshiro, Kato Toshiaki

机构信息

Department of Electronic Engineering, Tohoku University, Aoba 6-6-05, Aramaki, Aoba-ku, Sendai, 980-8579, Japan.

出版信息

Sci Rep. 2017 Sep 20;7(1):11967. doi: 10.1038/s41598-017-12287-6.

Abstract

Few-layered transition metal dichalcogenides (TMDs) are known as true two-dimensional materials, with excellent semiconducting properties and strong light-matter interaction. Thus, TMDs are attractive materials for semitransparent and flexible solar cells for use in various applications. Hoewver, despite the recent progress, the development of a scalable method to fabricate semitransparent and flexible solar cells with mono- or few-layered TMDs remains a crucial challenge. Here, we show easy and scalable fabrication of a few-layered TMD solar cell using a Schottky-type configuration to obtain a power conversion efficiency (PCE) of approximately 0.7%, which is the highest value reported with few-layered TMDs. Clear power generation was also observed for a device fabricated on a large SiO and flexible substrate, demonstrating that our method has high potential for scalable production. In addition, systematic investigation revealed that the PCE and external quantum efficiency (EQE) strongly depended on the type of photogenerated excitons (A, B, and C) because of different carrier dynamics. Because high solar cell performance along with excellent scalability can be achieved through the proposed process, our fabrication method will contribute to accelerating the industrial use of TMDs as semitransparent and flexible solar cells.

摘要

少层过渡金属二硫属化物(TMDs)是真正的二维材料,具有优异的半导体性能和强光与物质相互作用。因此,TMDs是用于各种应用的半透明和柔性太阳能电池的有吸引力的材料。然而,尽管最近取得了进展,但开发一种可扩展的方法来制造具有单层或少层TMDs的半透明和柔性太阳能电池仍然是一个关键挑战。在这里,我们展示了使用肖特基型配置轻松且可扩展地制造少层TMD太阳能电池,以获得约0.7%的功率转换效率(PCE),这是少层TMDs报道的最高值。在大面积SiO和柔性衬底上制造的器件也观察到了明显的发电,表明我们的方法具有可扩展生产的高潜力。此外,系统研究表明,由于不同的载流子动力学,PCE和外量子效率(EQE)强烈依赖于光生激子(A、B和C)的类型。由于通过所提出的工艺可以实现高太阳能电池性能以及优异的可扩展性,我们的制造方法将有助于加速TMDs作为半透明和柔性太阳能电池的工业应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bee2/5607301/a92671d11771/41598_2017_12287_Fig1_HTML.jpg

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