Engineering a surface reconstruction cascade via synergistic halide management for high-performance perovskite photovoltaics

Y Yali Bai (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 L Lei Yang Y Yue Xu R Rui Liu Q Qingchuan You (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,) Y Yutong Xia G Guoqing Du (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,) 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 efficiency and stability of perovskite solar cells (PSCs) are limited by surface defect-induced non-radiative recombination and ion migration. Herein, we propose a cascading-cooperative reconstruction strategy based on synergistic post-treatment with methylammonium chloride (MACl) and phenethylammonium iodide (PEAI), which forms a uniform passivation layer on perovskite films via a two-step solution process. Unlike conventional single-step passivation, MACl treatment induces a dissolution-recrystallization process to enlarge the grain size, while subsequent PEAI treatment further passivates grain boundary defects through ion exchange and amine coordination. The synergistic post-treatment reduces the surface trap density of perovskite to 1/3 of the control sample, with an increase in the open-circuit voltage (Voc) to 1.15 V, and a champion power conversion efficiency (PCE) of 23.24%. Besides, the device retains over 90% of its initial PCE after 720 h. This strategy, by elucidating the mechanism of constructing robust interfaces through cascading passivation, provides a new design principle for fabricating highly stable inverted PSCs.

Article Details

Volume / Issue Vol. 128, Issue 22
Published June 01, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

Y

Yali Bai

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

L

Lei Yang

Y

Yue Xu

R

Rui Liu

Q

Qingchuan You

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,

Y

Yutong Xia

G

Guoqing Du

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,

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,