Synergistic passivation of defects with a multifunctional additive for perovskite solar cells

J Jingwei Guo Z Zhuyou Liu (Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,) C Chenyu Zhao H Haikuo Guo (Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,) X Xin Wang J Jiali Wei H Haoran Yang K Kai Wu (BNLMS, College of Chemistry and Molecular Engineering) R Rui Liu T Tiantian Li (Frontiers Science Center for Transformative Molecules, State Key Laboratory of Chem-Bio Synergistic Matter Synthesis, School of Chemistry and Chemical Engineering) F Fuhua Hou (Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,)

Abstract

The presence of crystal defects in perovskite films significantly hinders the high efficiency and stability of perovskite solar cells. This study combines theoretical calculations and experimental characterizations to reveal the multifunctional synergistic passivation effect of sodium 2,4,5-trifluorobenzoate (STFB). Incorporating STFB resulted in high-quality perovskite films with increased grain sizes and decreased defect densities. Meanwhile, the optimized energy level alignment facilitates carrier extraction and transport, effectively increasing the open-circuit voltage (VOC). Ultimately, the STFB-modified devices achieved a 12.22% relative enhancement in power conversion efficiency (PCE) compared to the control devices. Additionally, the STFB-modified unencapsulated devices exhibit excellent long-term stability, maintaining 92.01% of the highest PCE after 1440 h. This study not only provides insights into the synergistic passivation of STFB but also suggests potential pathways for applying multifunctional organic molecules in photovoltaic device optimization.

Article Details

Volume / Issue Vol. 127, Issue 4
Published July 28, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (11)

J

Jingwei Guo

Z

Zhuyou Liu

Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,

C

Chenyu Zhao

H

Haikuo Guo

Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,

X

Xin Wang

J

Jiali Wei

H

Haoran Yang

K

Kai Wu

BNLMS, College of Chemistry and Molecular Engineering

R

Rui Liu

T

Tiantian Li

Frontiers Science Center for Transformative Molecules, State Key Laboratory of Chem-Bio Synergistic Matter Synthesis, School of Chemistry and Chemical Engineering

F

Fuhua Hou

Key Laboratory of Semiconductor Photovoltaic Technology and Energy Materials of Inner Mongolia Autonomous Region, School of Physical Science and Technology, Inner Mongolia University 1 , Hohhot 010021,