TY - JOUR
T1 - Highest-Efficiency Flexible Perovskite Solar Module by Interface Engineering for Efficient Charge-Transfer
AU - Yang, Dong
AU - Yang, Ruixia
AU - Zhang, Cong
AU - Ye, Tao
AU - Wang, Kai
AU - Hou, Yuchen
AU - Zheng, Luyao
AU - Priya, Shashank
AU - Liu, Shengzhong
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/8/10
Y1 - 2023/8/10
N2 - The electron-transport layer (ETL) plays an important role in improving the performance of flexible perovskite solar cells (F-PSCs). Herein, a room-temperature-processed SnO2:OH ETL is demonstrated, that exhibits reduced defect density, in particular lower oxygen vacancy concentration, with better energy band alignment and more wettable surface for quality perovskite deposition. More importantly, an efficient electron-transfer channel is produced between the ETL and the perovskite layer due to the formation of hydrogen bonds at the interface, resulting in enhanced electron extraction from the perovskite. As a result, the efficiency of a large-area (36.50 cm2) flexible perovskite solar module based on MAPbI3 is increased to as high as 18.71%; this is thought to be the highest reported PCE value for flexible perovskite solar modules to date. In addition, it exhibits high durability while maintaining over 83% of its initial PCE after flexing test cycles. Further, F-PSCs with SnO2:OH show remarkably long-term stability, owing to a high quality of the perovskite film and a strong coupling between the SnO2:OH and perovskite layer caused by hydrogen bonds, which successfully inhibits moisture permeation.
AB - The electron-transport layer (ETL) plays an important role in improving the performance of flexible perovskite solar cells (F-PSCs). Herein, a room-temperature-processed SnO2:OH ETL is demonstrated, that exhibits reduced defect density, in particular lower oxygen vacancy concentration, with better energy band alignment and more wettable surface for quality perovskite deposition. More importantly, an efficient electron-transfer channel is produced between the ETL and the perovskite layer due to the formation of hydrogen bonds at the interface, resulting in enhanced electron extraction from the perovskite. As a result, the efficiency of a large-area (36.50 cm2) flexible perovskite solar module based on MAPbI3 is increased to as high as 18.71%; this is thought to be the highest reported PCE value for flexible perovskite solar modules to date. In addition, it exhibits high durability while maintaining over 83% of its initial PCE after flexing test cycles. Further, F-PSCs with SnO2:OH show remarkably long-term stability, owing to a high quality of the perovskite film and a strong coupling between the SnO2:OH and perovskite layer caused by hydrogen bonds, which successfully inhibits moisture permeation.
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U2 - 10.1002/adma.202302484
DO - 10.1002/adma.202302484
M3 - Article
C2 - 37120757
AN - SCOPUS:85163741732
SN - 0935-9648
VL - 35
JO - Advanced Materials
JF - Advanced Materials
IS - 32
M1 - 2302484
ER -