TY - JOUR
T1 - Molecular Engineering in Perovskite Solar Cells
T2 - A Computational Study on 2-Mercaptopyridine Derivatives as Surface Passivators against Water
AU - Zhang, Weiyi
AU - Li, Quan Song
AU - Li, Ze Sheng
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/2/22
Y1 - 2022/2/22
N2 - Contemporary perovskite solar cells (PSCs) have drawn substantial interest due to their high photovoltaic efficiency. However, the instability of perovskite in a humid environment restricts the service time extension and limits the large-scale application of PSCs. Herein, a series of passivation molecules (PMs), 2-MEP, 2-MDEP, 2-MTEP, and 2-MQEP, featuring different lengths of alkyl chains have been designed based on 2-mercaptopyridine (2-MP) which greatly improve the stability of PSCs in the humid environment. First-principles calculations demonstrate that the designed molecules offer stronger adsorption on the perovskite surface compared with 2-MP. The charge density difference and Bader charge analysis show that the newly designed Lewis bases improve the charge transfer ability, leading to effective separation of carriers at PM@MAPbI3 interfaces. Furthermore, molecular dynamics simulations verify that the steady Pb-N/S interactions in the MAPbI3/PM/H2O system effectively prevent H2O from approaching the perovskite surface. This work not only provides a set of promising surface passivators (especially 2-MDEP), but also paves a way for the design of PMs that endow PSCs stability and make PSCs highly competitive in the photovoltaic market.
AB - Contemporary perovskite solar cells (PSCs) have drawn substantial interest due to their high photovoltaic efficiency. However, the instability of perovskite in a humid environment restricts the service time extension and limits the large-scale application of PSCs. Herein, a series of passivation molecules (PMs), 2-MEP, 2-MDEP, 2-MTEP, and 2-MQEP, featuring different lengths of alkyl chains have been designed based on 2-mercaptopyridine (2-MP) which greatly improve the stability of PSCs in the humid environment. First-principles calculations demonstrate that the designed molecules offer stronger adsorption on the perovskite surface compared with 2-MP. The charge density difference and Bader charge analysis show that the newly designed Lewis bases improve the charge transfer ability, leading to effective separation of carriers at PM@MAPbI3 interfaces. Furthermore, molecular dynamics simulations verify that the steady Pb-N/S interactions in the MAPbI3/PM/H2O system effectively prevent H2O from approaching the perovskite surface. This work not only provides a set of promising surface passivators (especially 2-MDEP), but also paves a way for the design of PMs that endow PSCs stability and make PSCs highly competitive in the photovoltaic market.
KW - density functional theory calculations
KW - molecular dynamics
KW - passivation
KW - perovskite solar cells
KW - stability of perovskite solar cells
UR - http://www.scopus.com/inward/record.url?scp=85122894028&partnerID=8YFLogxK
U2 - 10.1002/admi.202101881
DO - 10.1002/admi.202101881
M3 - Article
AN - SCOPUS:85122894028
SN - 2196-7350
VL - 9
JO - Advanced Materials Interfaces
JF - Advanced Materials Interfaces
IS - 6
M1 - 2101881
ER -