Guo Zhanglin, Gao Liguo, Xu Zhenhua, Teo Siowhwa, Zhang Chu, Kamata Yusuke, Hayase Shuzi, Ma Tingli
Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology, Kitakyushu, Fukuoka, 808-0196, Japan.
School of Petroleum and Chemical Engineering, Dalian University of Technology, Panjin Campus, Panjin, 124221, P. R. China.
Small. 2018 Nov;14(47):e1802738. doi: 10.1002/smll.201802738. Epub 2018 Oct 9.
MXenes, a newly intriguing family of 2D materials, have recently attracted considerable attention owing to their excellent properties such as high electrical conductivity and mobility, tunable structure, and termination groups. Here, the Ti C T MXene is incorporated into the perovskite absorber layer for the first time, which aims for efficiency enhancement. Results show that the termination groups of Ti C T can retard the crystallization rate, thereby increasing the crystal size of CH NH PbI . It is found that the high electrical conductivity and mobility of MXene can accelerate the charge transfer. After optimizing the key parameters, 12% enhancement in device performance is achieved by 0.03 wt% amount of MXene additive. This work unlocks opportunities for the use of MXene as potential materials in perovskite solar cell applications.
MXenes是一类新的、引人关注的二维材料,由于其具有高电导率和迁移率、可调控结构以及端基等优异性能,近来受到了广泛关注。在此,首次将Ti C T MXene掺入钙钛矿吸收层中,旨在提高效率。结果表明,Ti C T的端基可以延缓结晶速率,从而增大CH NH PbI的晶体尺寸。研究发现,MXene的高电导率和迁移率能够加速电荷转移。在优化关键参数后,通过添加0.03 wt%的MXene添加剂,器件性能提高了12%。这项工作为MXene在钙钛矿太阳能电池应用中作为潜在材料的使用开辟了机会。