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具有氧化钼修饰石墨烯阳极的胶体硒化铅太阳能电池

Colloidal PbSe Solar Cells with Molybdenum Oxide Modified Graphene Anodes.

作者信息

Wu Hua, Zhang Xiaoyu, Zhang Yu, Yan Long, Gao Wenzhu, Zhang Tieqiang, Wang Yiding, Zhao Jun, Yu William W

机构信息

College of Material Science and Engineering, Qingdao University of Science and Technology , Qingdao 266042, China.

Department of Chemistry and Physics, Louisiana State University , Shreveport, Louisiana 71115, United States.

出版信息

ACS Appl Mater Interfaces. 2015 Sep 30;7(38):21082-8. doi: 10.1021/acsami.5b03894. Epub 2015 Sep 16.

Abstract

With good electrical conductivity, optical transparency, and mechanical compliance, graphene films have shown great potential in application for photovoltaic devices as electrodes. However, photovoltaic devices employing graphene anodes usually suffer from poor hole collection efficiency because of the mismatch of energy levels between the anode and light-harvesting layers. Here, a simple solution treatment and a low-cost solution-processed molybdenum oxide (MoOx) film were used to modify the work function of graphene and the interfacial morphology, respectively, yielding highly efficient hole transfer. As a result, the graphene/MoOx anodes demonstrated low surface roughness and high electrical conductivity. Using the graphene/MoOx anodes in PbSe nanocrystal solar cells, we achieved 1 sun power conversion efficiency of 3.56%. Compared to the control devices with indium tin oxide anodes, the graphene/MoOx-based devices show excellent performance, demonstrating the great potential of the graphene/MoOx anodes for use in optoelectronics.

摘要

石墨烯薄膜具有良好的导电性、光学透明性和机械柔韧性,在作为光伏器件的电极应用方面展现出了巨大潜力。然而,采用石墨烯阳极的光伏器件通常存在空穴收集效率低的问题,这是由于阳极与光捕获层之间的能级不匹配所致。在此,采用一种简单的溶液处理方法和低成本的溶液法制备的氧化钼(MoOx)薄膜,分别用于调节石墨烯的功函数和界面形貌,从而实现高效的空穴传输。结果,石墨烯/MoOx阳极表现出低表面粗糙度和高导电性。在PbSe纳米晶体太阳能电池中使用石墨烯/MoOx阳极,我们实现了1个太阳光照下3.56%的功率转换效率。与采用氧化铟锡阳极的对照器件相比,基于石墨烯/MoOx的器件表现出优异的性能,证明了石墨烯/MoOx阳极在光电子学中的巨大应用潜力。

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