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具有碳量子点修饰的螺环-MeOTAD作为复合空穴传输层的高效平面钙钛矿太阳能电池。

Efficient Planar Perovskite Solar Cells with Carbon Quantum Dot-Modified spiro-MeOTAD as a Composite Hole Transport Layer.

作者信息

Liu Jing, Dong Qingshun, Wang Minhuan, Ma Hongru, Pei Mingzhu, Bian Jiming, Shi Yantao

机构信息

Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education), School of Physics, Dalian University of Technology, Dalian 116024, China.

State Key Laboratory of Fine Chemicals, School of Chemistry, Dalian University of Technology, Dalian 116024, China.

出版信息

ACS Appl Mater Interfaces. 2021 Dec 1;13(47):56265-56272. doi: 10.1021/acsami.1c18344. Epub 2021 Nov 18.

Abstract

In perovskite solar cells (PSCs), the hole-transport layer (HTL) plays an essential role in effective charge transport and extraction from the photoexcited perovskite, thus being significant for overall power conversion efficiency (PCE) and operational stability. So far, spiro-MeOTAD has been the most widely used HTL despite its inherent drawbacks, such as highly hygroscopic nature, poor conductivity, and mismatched energy-level alignment with the perovskite active layer. Here, a spiro-MeOTAD-based composite HTL modified by microwave method-synthesized carbon quantum dots (CQDs) was proposed and demonstrated as a promising HTL candidate for high-performance PSCs. The results demonstrated that the CQDs/spiro-MeOTAD composite HTL possesses several appealing characteristics for PSC applications, such as suitable energy levels for hole extraction, passivated interfacial trap states, and reduced recombination losses. Consequently, as compared to the control one using an unmodified spiro-MeOTAD HTL, (FAPbI)(MAPbBr)-based planar PSCs with composite HTL exhibit notably enhanced PCE and operational stability. Remarkably, an encouraging PCE of 20.41% was achieved for the champion device, and much improved operational stability was also demonstrated under continuous AM1.5 illumination with maximum power point (MPP) tracking conditions.

摘要

在钙钛矿太阳能电池(PSC)中,空穴传输层(HTL)在光激发钙钛矿的有效电荷传输和提取中起着至关重要的作用,因此对整体功率转换效率(PCE)和运行稳定性具有重要意义。到目前为止,螺环-甲基三芳胺(spiro-MeOTAD)尽管存在固有缺点,如高吸湿性、导电性差以及与钙钛矿活性层的能级匹配不当,但仍是使用最广泛的HTL。在此,提出了一种通过微波法合成的碳量子点(CQD)修饰的基于spiro-MeOTAD的复合HTL,并证明其是高性能PSC的一种有前景的HTL候选材料。结果表明,CQDs/spiro-MeOTAD复合HTL具有PSC应用所需的几个吸引人的特性,如适合空穴提取的能级、钝化的界面陷阱态以及减少的复合损失。因此,与使用未修饰的spiro-MeOTAD HTL的对照器件相比,具有复合HTL的基于(FAPbI)(MAPbBr)平面PSC表现出显著提高的PCE和运行稳定性。值得注意的是,冠军器件实现了令人鼓舞的20.41%的PCE,并且在最大功率点(MPP)跟踪条件下的连续AM1.5光照下也表现出了大大提高的运行稳定性。

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