He Zhengyan, Luan Tianxiang, Zhang Shufang, Wei Qilin, Huang Dan, Wang Lingyun, Wang Yu, Li Peizhou, Yu William W
School of Chemistry and Chemical Engineering, Shandong University, Jinan, 250100, China.
Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion, Qingdao, 266237, China.
Adv Mater. 2024 Nov;36(44):e2410363. doi: 10.1002/adma.202410363. Epub 2024 Sep 3.
The low crystallinity of the perovskite layers and many defects at grain boundaries within the bulk phase and at interfaces are considered huge barriers to the attainment of high performance and stability in perovskite solar cells (PSCs). Herein, a robust photoelectric imidazole-linked porphyrin-based covalent organic framework (PyPor-COF) is introduced to precisely control the perovskite crystallization process and effectively passivate defects at grain boundaries through a sequential deposition method. The 1D porous channels, abundant active sites, and high crystallization orientation of PyPor-COF offer advantages for regulating the crystallization of PbI and eliminating defects. Moreover, the intrinsic electronic characteristics of PyPor-COF endow a more closely matched energy level arrangement within the perovskite layer, which promotes charge transport and thereby suppresses the recombination of photogenerated carriers. The champion PSCs containing PyPor-COF achieved power conversion efficiencies of 24.10% (0.09 cm) and 20.81% (1.0 cm), respectively. The unpackaged optimized device is able to maintain its initial efficiency of 80.39% even after being exposed to air for 2000 h. The device also exhibits excellent heating stability and light stability. This work gives a new impetus to the development of highly efficient and stable PSCs via employing COFs.
钙钛矿层的低结晶度以及体相内和界面处晶界的许多缺陷被认为是钙钛矿太阳能电池(PSC)实现高性能和稳定性的巨大障碍。在此,引入了一种坚固的基于光电咪唑连接卟啉的共价有机框架(PyPor-COF),通过顺序沉积法精确控制钙钛矿的结晶过程并有效钝化晶界处的缺陷。PyPor-COF的一维多孔通道、丰富的活性位点和高结晶取向为调节PbI的结晶和消除缺陷提供了优势。此外,PyPor-COF的固有电子特性使钙钛矿层内的能级排列更紧密匹配,促进了电荷传输,从而抑制了光生载流子的复合。含有PyPor-COF的最佳PSC分别实现了24.10%(0.09平方厘米)和20.81%(1.0平方厘米)的功率转换效率。未封装的优化器件即使在空气中暴露2000小时后仍能保持其初始效率的80.39%。该器件还表现出优异的热稳定性和光稳定性。这项工作通过采用COF为高效稳定PSC的发展提供了新的推动力。