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使用阳离子掺杂板钛矿TiO顶缓冲层的22%效率倒置钙钛矿光伏电池。

22% Efficiency Inverted Perovskite Photovoltaic Cell Using Cation-Doped Brookite TiO Top Buffer.

作者信息

Hu Xiaowen, Liu Chang, Zhang Zhiyong, Jiang Xiao-Fang, Garcia Juan, Sheehan Colton, Shui Lingling, Priya Shashank, Zhou Guofu, Zhang Sen, Wang Kai

机构信息

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology & Institute of Electronic Paper Displays South China Academy of Advanced Optoelectronics South China Normal University Guangzhou 510006 China.

SCNU-TUE Joint Lab of Device Integrated Responsive Materials (DIRM) National Center for International Research on Green Optoelectronics South China Normal University Guangzhou 510006 China.

出版信息

Adv Sci (Weinh). 2020 Jul 2;7(16):2001285. doi: 10.1002/advs.202001285. eCollection 2020 Aug.

Abstract

Simultaneously achieving high efficiency and high durability in perovskite solar cells is a critical step toward the commercialization of this technology. Inverted perovskite photovoltaic (IP-PV) cells incorporating robust and low levelized-cost-of-energy (LCOE) buffer layers are supposed to be a promising solution to this target. However, insufficient inventory of materials for back-electrode buffers substantially limits the development of IP-PV. Herein, a composite consisting of 1D cation-doped TiO brookite nanorod (NR) embedded by 0D fullerene is investigated as a top modification buffer for IP-PV. The cathode buffer is constructed by introducing fullerene to fill the interstitial space of the TiO NR matrix. Meanwhile, cations of transition metal Co or Fe are doped into the TiO NR to further tune the electronic property. Such a top buffer exhibits multifold advantages, including improved film uniformity, enhanced electron extraction and transfer ability, better energy level matching with perovskite, and stronger moisture resistance. Correspondingly, the resultant IP-PV displays an efficiency exceeding 22% with a 22-fold prolonged working lifetime. The strategy not only provides an essential addition to the material inventory for top electron buffers by introducing the 0D:1D composite concept, but also opens a new avenue to optimize perovskite PVs with desirable properties.

摘要

在钙钛矿太阳能电池中同时实现高效率和高耐久性是该技术商业化的关键一步。包含坚固且能源平准化成本(LCOE)较低的缓冲层的倒置钙钛矿光伏(IP-PV)电池被认为是实现这一目标的一个有前途的解决方案。然而,用于背电极缓冲层的材料库存不足严重限制了IP-PV的发展。在此,研究了一种由0D富勒烯嵌入的1D阳离子掺杂TiO板钛矿纳米棒(NR)组成的复合材料作为IP-PV的顶部改性缓冲层。通过引入富勒烯填充TiO NR基体的间隙空间来构建阴极缓冲层。同时,将过渡金属Co或Fe的阳离子掺杂到TiO NR中以进一步调节电子性能。这种顶部缓冲层具有多重优势,包括改善薄膜均匀性、增强电子提取和转移能力、与钙钛矿更好的能级匹配以及更强的防潮性。相应地,所得的IP-PV显示出超过22%的效率,工作寿命延长了22倍。该策略不仅通过引入0D:1D复合概念为顶部电子缓冲层的材料库存提供了重要补充,还开辟了一条优化具有理想性能的钙钛矿光伏电池的新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6950/7435259/c9e71b82325b/ADVS-7-2001285-g001.jpg

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