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新型碳材料在钙钛矿太阳电池中的应用研究进展
Progress of new carbon material research in perovskite solar cells

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文摘 新型碳材料如石墨烯及其氧化物、碳纳米管、富勒烯及石墨炔等因其优异的热学、力学、电学、光学性能成为了钙钛矿太阳电池研究的又一亮点. 本文总结了新型碳材料在钙钛矿太阳电池对电极、电子传输材料及空穴传输材料中的研究进展, 新型碳材料的引入有效地提高了钙钛矿电池的性能, 为下一步新型碳材料的应用开发以及钙钛矿电池器件的研究提供了新的思路.
其他语种文摘 A photoelectric conversion efficiency of 3.8% was achieved based on organic-inorganic hybrid perovskites CH_3NH_3PbBr_3 and CH_3NH_3PbI_3 in 2009, and their efficiencies have leaped to 20.1% in the past five years, which are comparable to Cu(In,Ga) Se_2 solar cells. The researchers mainly focused on appropriate materials and device structures, high-quality film depositions, careful interface designs and controllable carrier properties. Even so, it is still a long-term work to develop the low-priced, stable, environmental-friendly and highly-efficient perovskite solar cells, for example, the hole transport material spiro-OMeTAD is complicated and expensive, the electron transport material TiO_2 must be processed by high temperature annealing and the Au electrode is extensively used, all of which are not conducible to the commercialized application. On this occasion, new carbon materials, such as graphene oxide, carbon nanotubes, fullerene, graphdiyne, etc. have become another highlight of perovskite solar cells due to their excellent thermal, mechanical, electrical and optical performances. Carbon materials are low-cost and highly available industrial materials, which have been applied to highly efficient counter electrodes for dye-sensitized solar cell and quantum dot-sensitized solar cells. The approximate 5.0 eV work function makes carbon material the ideal counter electrode material for perovskite solar cell. Carbon material is endowed with remarkably high charge mobility and electronic conductivity, which has been identified as one of the strongest materials for electron transport in perovskite solar cell. Similarly, a perovskite solar cell using hole transport materials incorporating carbon material shows an improved power conversion efficiency due to enhanced electrical conductivity and carrier mobility because the low electrical conductivity of hole transport material such as spiro-OMeTAD is considered to be an impediment to further enhancement of the power conversion efficiency and a hole transport material with higher conductivity should reduce the series resistance and increase the fill factor, thereby enhancing the power conversion efficiency of perovskite solar cell. In this paper, the research progress of new carbon materials for counter electrode, electron transport materials, hole transport materials in perovskite solar cells are summarized. The power efficiency of perovskite solar cell is enhanced greatly because of the introduction of new carbon materials, which provides a new idea for the further application of new carbon materials and device design of perovskite solar cells.
来源 物理学报 ,2016,65(5):058801-01-058801-07 【核心库】
DOI 10.7498/aps.65.058801
关键词 钙钛矿太阳电池 ; 新型碳材料 ; 电极 ; 电子与空穴传输
地址

中国科学院广州能源研究所, 中国科学院可再生能源与天然气水合物重点实验室, 广州, 510640

语种 中文
文献类型 综述型
ISSN 1000-3290
学科 化学;电工技术
基金 广东省协同创新与平台环境建设项目 ;  江苏省能量转换材料与技术重点实验室开放课题基金 ;  广东省自然科学基金
文献收藏号 CSCD:5650910

参考文献 共 18 共1页

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引证文献 6

1 李新利 室温下快速合成均质大颗粒有机-无机杂化钙钛矿薄膜 人工晶体学报,2016,45(5):1365-1369
被引 2

2 李新利 一步溶液法制备有机-无机杂化钙钛矿薄膜 半导体技术,2017,42(8):620-625
被引 1

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