偶极子
钙钛矿(结构)
欧姆接触
化学
阴极
钝化
光电子学
化学物理
光伏系统
肖特基势垒
电场
纳米技术
分子内力
有机太阳能电池
工程物理
分子
太阳能电池
能量转换效率
混合太阳能电池
聚合物太阳能电池
光活性层
钙钛矿太阳能电池
光电效应
三卤化物
磁偶极子
作者
Huanxiang Jiang,Guodong Yang,Xuewen Wang,Yuqi Wang,Andong Zhang,Hao Lu,Chengyi Zhang,Lei Cao,Dan Ouyang,Zhishan Bo
摘要
High Resolution Image Download MS PowerPoint Slide Cathode interfacial layers (CILs) are of paramount importance in eliminating the Schottky barrier and enhancing the built-in electric field of solar cells. A profound exploration of the novel design principles for CILs and a clear elucidation of their underlying working mechanisms are undeniably crucial for developing new CIL materials and improving the performance of related devices. In this study, we meticulously designed four dipole molecules featuring different anchoring groups and intramolecular dipole moments, with the aim of conducting an in-depth investigation into the design strategy of employing dipole molecules as cathode interfacial layers. By harnessing the synergistic effect of the intramolecular dipole and the dipole formed between the anchoring group and the metal electrode, Rh-Py can significantly increase the interfacial dipole moment. This not only effectively strengthens the built-in electric field but also optimizes the ohmic contact in organic solar cells, enabling the power conversion efficiency to surpass 20% successfully. Furthermore, the strong interaction between Rh-Py and Pb 2 + enables it to effectively passivate Pb 2 + defects in perovskite films. When utilized as an antisolvent additive in perovskite solar cells, Rh-Py can markedly reduce nonradiative energy losses and enhance the open-circuit voltage, thereby achieving an impressive PCE of up to 25.80%. Our research findings have shed light on the design principles of fully conjugated dipolar molecules as a new type of interfacial layer material and demonstrated their versatile application potential in the fields of organic and perovskite solar cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI