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多功能双界面层助力实现高效稳定的倒置钙钛矿太阳能电池。

Multifunctional dual-interface layer enables efficient and stable inverted perovskite solar cells.

作者信息

Wang Chaofeng, Guo Yi, Liu Shuang, Huang Jiajia, Liu Xiaohui, Zhang Jing, Hu Ziyang, Zhu Yuejin, Huang Like

机构信息

Department of Microelectronic Science and Engineering, School of Physical Science and Technology, Ningbo University, Fenghua Road 818, Ningbo 315211, China.

College of Science and Technology, Ningbo University, Fenghua Road 818, Ningbo 315211, China.

出版信息

Phys Chem Chem Phys. 2024 Mar 6;26(10):8299-8307. doi: 10.1039/d3cp05794a.

Abstract

Considering that the hydrophobicity of PTAA as the surface of an inverted perovskite solar cell (PSC) substrate directly influences the crystallization and top surface properties of perovskite films, dual-interface engineering is a significant strategy to obtain excellent PSCs. PFN-Br was inserted into the PTAA/perovskite interface to ensure close interfacial contact and achieve exceptional crystallization, and then the perovskite top surface was covered with 3-PyAI to further improve its interface property. The mechanism of interaction of PFN-Br and 3-PyAI with perovskites was analyzed through various characterization methods. The results showed that the introduction of a hydrophilic interface layer reduces voids and defects at the bottom of the film. Additionally, the existence of 3-PyAI reduces surface defects, optimizes energy level alignment, and decreases non-radiative recombination, which is beneficial for charge transfer. Consequently, the open circuit voltage () and fill factor (FF) of the optimized device were greatly enhanced, and the champion device showed a power conversion efficiency (PCE) of 22.07%. The unencapsulated device with PFN-Br&3-PyAI can retain 80% of its initial performance after aging in the air atmosphere (25 °C at a relative humidity (RH) of 25%) for 27 days. Moreover, the reverse bias stability of the device was improved, with the reverse breakdown voltage () reaching -2 V. This work recommends a dual-interface strategy for efficient and reliable PTAA-based PSCs.

摘要

考虑到作为倒置钙钛矿太阳能电池(PSC)衬底表面的聚(对苯二甲酸亚胺)(PTAA)的疏水性直接影响钙钛矿薄膜的结晶和顶表面性质,双界面工程是获得优异PSC的重要策略。将2,2'-[(9H-芴-9,9-二基)双(4,1-亚苯基氧基)]双(N,N-二甲基乙胺溴化物)(PFN-Br)插入PTAA/钙钛矿界面以确保紧密的界面接触并实现优异的结晶,然后用3-吡啶甲脒碘化物(3-PyAI)覆盖钙钛矿顶表面以进一步改善其界面性质。通过各种表征方法分析了PFN-Br和3-PyAI与钙钛矿的相互作用机制。结果表明,亲水性界面层的引入减少了薄膜底部的空隙和缺陷。此外,3-PyAI的存在减少了表面缺陷,优化了能级排列,并减少了非辐射复合,这有利于电荷转移。因此,优化器件的开路电压()和填充因子(FF)大大提高,最佳器件的功率转换效率(PCE)达到22.07%。具有PFN-Br&3-PyAI的未封装器件在空气气氛(25℃,相对湿度(RH)为25%)中老化27天后可保留其初始性能的80%。此外,器件的反向偏置稳定性得到改善,反向击穿电压()达到-2V。这项工作推荐了一种用于高效可靠的基于PTAA的PSC的双界面策略。

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