Reducing Interface Energy Loss of Perovskite Solar Cells by Molecular Engineering of Hole‐Transporting Materials
Abstract
ABSTRACT Numerous novel hole‐transporting materials (HTMs) have been reported in the literature, which play a vital role in enhancing the efficiency and stability of perovskite solar cells (PSCs). However, the PSCs using these HTMs continue to suffer from exciton recombination induced by energy level misalignment and defect states. Herein, an ingenious molecular design for HTMs ( WD03 with triphenylethylene and WD04 with trithienylethylene) is reported to modulate their energy levels and passivation effectively. The optimal band alignment between WD03 and perovskite is crucial for enhancing the open‐circuit voltage ( V oc ), which minimizes the interface carrier recombination. The theoretical analysis reveals that replacing thiophene with benzene enhances the passivation ability of HTM, resulting in a more substantial passivation effect on the Pb‐cluster defect of perovskite. These factors contribute to a high V oc (1.194 V) of WD03 ‐based cell, ranking among the highest values for n–i–p PSCs with a normal bandgap perovskite absorber. Moreover, the propeller‐shaped WD03 strikes an excellent balance between charge transport and film quality. Owing to these advantages, the PSC based on dopant‐free WD03 with surface modification attains a remarkable efficiency of 23.66% and the PSC based on doped WD03 reaches an exceptional efficiency of 25.79%. Following the substitution of trithienylethylene with triphenylethylene, the WD03 ‐based cell exhibits enhanced stability compared to the cell based on WD04 . This work emphasizes the significance of molecular engineering of HTMs in regulating energy level and passivation ability, which are crucial for achieving high V oc and stability in PSCs.
Article Details
Authors (18)
Guang Shao
School of Chemistry Sun Yat‐sen University Guangzhou Guangdong China
Shang‐Gen Yang
School of Chemistry Sun Yat‐sen University Guangzhou Guangdong China
Jian Chen
Dian Wang
Jun‐Jie Zhang
State Key Laboratory of Crystal Materials Institute of Crystal Materials Shandong University Jinan China
Zu‐Kun Zhou
School of Chemistry Sun Yat‐sen University Guangzhou Guangdong China
Jing Xiao
School of Materials Science and Engineering, Sun Yat-sen University
Long Jiang
Zhi‐Zheng Wu
School of Chemistry Sun Yat‐sen University Guangzhou Guangdong China
Hiroyuki Kanda
Hua Yang
State Key Laboratory of Natural Medicines, School of Pharmacy, China Pharmaceutical University, 24 Tong Jia Xiang, Nanjing 210009, China
Zeliang Qiu
College of Materials and Chemistry and Chemical Engineering Chengdu University of Technology Chengdu China
Ruiyuan Hu
New Energy Technology Engineering Laboratory of Jiangsu Province, School of Science Nanjing University of Posts and Telecommunications (NJUPT) Nanjing Jiangsu China
Xingao Li
New Energy Technology Engineering Laboratory of Jiangsu Province, School of Science Nanjing University of Posts and Telecommunications (NJUPT) Nanjing Jiangsu China
Ammar Ahmed Khan
Department of Physics, Syed Babar Ali School of Science and Engineering, Lahore University of Management Sciences (LUMS), Opposite Sector U, D.H.A. 1 , Lahore 54792,
Yi Zhang
Jianxing Xia
Mohammad Khaja Nazeeruddin