Molecular Riveting Stabilizes Wide‐Bandgap Perovskites by Reinforcing Cation‐Octahedron Coupling

ABSTRACT High‐quality wide‐bandgap (WBG) perovskites are essential top‐cell absorbers for perovskite/silicon tandem cells, yet their stability is limited by light‐induced halide phase segregation and defect evolution. Here, we report a molecular riveting strategy that reinforces surface/interface cation‐octahedron coupling in mixed‐halide WBG perovskites. 6‐propyl‐2‐thiouracil (PTU) preferentially resides at structurally vulnerable surface and grain‐boundary regions, where its nitrogen‐ and sulfur‐containing groups simultaneously form hydrogen bonds with FA + cations and coordinate undercoordinated Pb 2+ sites in incomplete [PbX 6 ] 4− octahedra. This dual binding bridges the organic cations and inorganic octahedra, stabilizing the surface organic‐inorganic framework and suppressing photoinduced lattice fluctuation, defect formation, and halide demixing. Consequently, WBG single‐junction devices increases from 22.05% to 23.63%, with 95% of the initial efficiency retained after 1000 h of continuous tests. When integrated with a silicon bottom cell, the optimized perovskite top cell enables a tandem device with an efficiency of 32.22%, which maintains 95% of its initial performance after 1160 h of maximum‐power‐point tracking. This work establishes molecular riveting as an effective design principle for durable WBG perovskites and tandem photovoltaics.

Authors

Institutions

Publication Details

Journal
Advanced Functional Materials
Published
2026-09-09
DOI
https://doi.org/10.1002/adfm.78276
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Molecular Riveting Stabilizes Wide‐Bandgap Perovskites by Reinforcing Cation‐Octahedron Coupling

Jiyao Wei, Xuegong Yu, Yong Wang, Jingxin Liu et al.
Advanced Functional Materials
Perovskite Materials and Applications
article

Molecular Riveting Stabilizes Wide‐Bandgap Perovskites by Reinforcing Cation‐Octahedron Coupling

Jiyao Wei, Xuegong Yu, Yong Wang, Jingxin Liu, Yehui Wen, Biao Li, Deren Yang, Hanguang Fu
article en

Abstract

ABSTRACT High‐quality wide‐bandgap (WBG) perovskites are essential top‐cell absorbers for perovskite/silicon tandem cells, yet their stability is limited by light‐induced halide phase segregation and defect evolution. Here, we report a molecular riveting strategy that reinforces surface/interface cation‐octahedron coupling in mixed‐halide WBG perovskites. 6‐propyl‐2‐thiouracil (PTU) preferentially resides at structurally vulnerable surface and grain‐boundary regions, where its nitrogen‐ and sulfur‐containing groups simultaneously form hydrogen bonds with FA + cations and coordinate undercoordinated Pb 2+ sites in incomplete [PbX 6 ] 4− octahedra. This dual binding bridges the organic cations and inorganic octahedra, stabilizing the surface organic‐inorganic framework and suppressing photoinduced lattice fluctuation, defect formation, and halide demixing. Consequently, WBG single‐junction devices increases from 22.05% to 23.63%, with 95% of the initial efficiency retained after 1000 h of continuous tests. When integrated with a silicon bottom cell, the optimized perovskite top cell enables a tandem device with an efficiency of 32.22%, which maintains 95% of its initial performance after 1160 h of maximum‐power‐point tracking. This work establishes molecular riveting as an effective design principle for durable WBG perovskites and tandem photovoltaics.

Advanced Functional Materials
Zhejiang A & F University (CN), Beijing University of Technology (CN), Hangzhou Vocational and Technical College (CN), Zhejiang University (CN)
Openalex Percentile: Top 20%
Perovskite Materials and Applications
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.