Chen Qi, Wang Cheng, Li Yaowen, Chen Liwei
i-Lab, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, 215123 Suzhou, China.
School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei 230026, China.
J Am Chem Soc. 2020 Oct 28;142(43):18281-18292. doi: 10.1021/jacs.0c07439. Epub 2020 Oct 2.
Incorporating a dipole interlayer has been one of the most crucial interfacial engineering strategies in organic and perovskite solar cells. An interfacial dipole brings steep shifts in electronic band structure across interfaces and thus effectively tunes charge carrier transport. However, the origin of the interfacial dipole and its effects on device performance are not entirely clear; they are even controversial in some cases. We devote this Perspective to identifying the electric dipole of various interlayers and correlating the interfacial dipole with device performance on the basis of classical semiconductor device theory. It is important to further consider the chemical nature of interlayers beyond the simplified model of an interfacial dipole to develop a full understanding of interfacial structure, energy bands, and device operation mechanism. Researchers are encouraged to integrate and characterizations with numerical simulations in future studies.
引入偶极子夹层一直是有机和钙钛矿太阳能电池中最关键的界面工程策略之一。界面偶极子会使电子能带结构在界面处发生急剧变化,从而有效调节电荷载流子的传输。然而,界面偶极子的起源及其对器件性能的影响并不完全清楚;在某些情况下甚至存在争议。我们撰写这篇综述旨在基于经典半导体器件理论确定各种夹层的电偶极子,并将界面偶极子与器件性能相关联。除了界面偶极子的简化模型之外,进一步考虑夹层的化学性质对于全面理解界面结构、能带和器件运行机制非常重要。鼓励研究人员在未来的研究中将实验和表征与数值模拟相结合。