TY - JOUR
T1 - Molecular Hinges Stabilize Formamidinium-Based Perovskite Solar Cells with Compressive Strain
AU - Shi, Congbo
AU - Song, Qizhen
AU - Wang, Hao
AU - Ma, Sai
AU - Wang, Chenyue
AU - Zhang, Xiao
AU - Dou, Jie
AU - Song, Tinglu
AU - Chen, Pengwan
AU - Zhou, Huanping
AU - Chen, Yihua
AU - Zhu, Cheng
AU - Bai, Yang
AU - Chen, Qi
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/7/11
Y1 - 2022/7/11
N2 - Formamidinium (FA)-based lead triiodide have emerged as promising light-harvesting materials for solar cells due to their intriguing optoelectronic properties. However, obstacles to commercialization remain regarding the primary intrinsic materials instability, wherein volatile organic components of FA+ cations are prone to escape under operational stressors. Herein, stabilizing FA-based perovskite through toughening the interface with the symmetric molecule of 1,1′-(Methylenedi-4,1-phenylene) bismaleimide (BMI) is reported. BMI with two maleimides can simultaneously bind with FA+ and/or undercoordinated Pb2+ through chemical bonding, which also compresses the resultant perovskite lattice. The chemical bonding and strain modulation synergistically not only passivate film defects, but also inhibit perovskite decomposition, thus significantly improving the intrinsic stability of perovskite films. As a result, the BMI-modified perovskite solar cells (PSCs) show improved power conversion efficiency (PCE) from 21.4% to 22.7% and enhanced long-term operational stability, maintaining 91.8% of the initial efficiency after 1000 h under continuous maximum power point tracking. The findings shed light on the synergetic effects of chemical interactions and physical regulations, which opens a new avenue for stable and efficient perovskite-based optoelectronic devices.
AB - Formamidinium (FA)-based lead triiodide have emerged as promising light-harvesting materials for solar cells due to their intriguing optoelectronic properties. However, obstacles to commercialization remain regarding the primary intrinsic materials instability, wherein volatile organic components of FA+ cations are prone to escape under operational stressors. Herein, stabilizing FA-based perovskite through toughening the interface with the symmetric molecule of 1,1′-(Methylenedi-4,1-phenylene) bismaleimide (BMI) is reported. BMI with two maleimides can simultaneously bind with FA+ and/or undercoordinated Pb2+ through chemical bonding, which also compresses the resultant perovskite lattice. The chemical bonding and strain modulation synergistically not only passivate film defects, but also inhibit perovskite decomposition, thus significantly improving the intrinsic stability of perovskite films. As a result, the BMI-modified perovskite solar cells (PSCs) show improved power conversion efficiency (PCE) from 21.4% to 22.7% and enhanced long-term operational stability, maintaining 91.8% of the initial efficiency after 1000 h under continuous maximum power point tracking. The findings shed light on the synergetic effects of chemical interactions and physical regulations, which opens a new avenue for stable and efficient perovskite-based optoelectronic devices.
KW - chemical binding
KW - density functional theory calculations
KW - perovskite solar cells
KW - stability
KW - strain engineering
UR - http://www.scopus.com/inward/record.url?scp=85128102483&partnerID=8YFLogxK
U2 - 10.1002/adfm.202201193
DO - 10.1002/adfm.202201193
M3 - Article
AN - SCOPUS:85128102483
SN - 1616-301X
VL - 32
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 28
M1 - 2201193
ER -