Fully chemical interface engineering for statically and dynamically stable perovskite solar cells

L Luyao Li (Department of Gastrointestinal Oncology, Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences) C Cheng Wang W Weicun Chu J Jaewang Park Y Yiming Dai Q Qiankai Ba K Kaifeng Wang J Jiaxing Gao Z Zeliang Wei X Xiaoming Zhao (Chinese Academy of Sciences Key Laboratory of Nutrition, Metabolism and Food Safety, Shanghai Institute of Nutrition and Health, University of Chinese Academy of Sciences, Chinese Academy of Sciences) X Xuchen Nie L Lixiong Yin S Sang Il Seok (Department of Energy Engineering, School of Energy and Chemical Engineering) R Riming Nie W Wanlin Guo (National Key Laboratory of Mechanics and Control for Aerospace Structures and Key Laboratory for Intelligent Nano Materials and Devices of the Ministry of Education, Institute for Frontier Science)

Abstract

Abstract The interfacial modifications between perovskite and charge-transport layers can arise from strong chemisorption bonds or weak physical adsorption interactions. However, modifications based on physical adsorption are susceptible to detachment, which not only disrupts the original energy level alignment and defect passivation but also introduces new charge recombination centers. Here, we report a fully chemical modification strategy in which the interfacial modifiers undergo an in situ crosslinking-like reaction, forming a localized, chemically bonded layer that seamlessly extends from the bulk of the underlying transport layer to the interface. Perovskite solar cells (PSCs) fabricated with this fully chemical modification strategy achieve a power conversion efficiency (PCE) of 25.52% (certified 25.49%) under standard conditions, representing one of the highest PCEs reported for devices fully fabricated in an ambient atmosphere. In terms of static stability, unencapsulated devices exhibit linear extrapolated T 80 lifetimes of 27,000 h during dark shelf storage and 19,000 h under thermal stress at 85 °C, both of which are record-breaking values for dark shelf and thermal stability, respectively. For dynamic stability, the devices maintain a linear extrapolated T 80 lifetime of 2,600 h under light-dark cycling, representing the most dynamically stable PSCs reported to date.

Article Details

Volume / Issue Vol. 16, Issue 1
Published September 29, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

L

Luyao Li

Department of Gastrointestinal Oncology, Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences

C

Cheng Wang

W

Weicun Chu

J

Jaewang Park

Y

Yiming Dai

Q

Qiankai Ba

K

Kaifeng Wang

J

Jiaxing Gao

Z

Zeliang Wei

X

Xiaoming Zhao

Chinese Academy of Sciences Key Laboratory of Nutrition, Metabolism and Food Safety, Shanghai Institute of Nutrition and Health, University of Chinese Academy of Sciences, Chinese Academy of Sciences

X

Xuchen Nie

L

Lixiong Yin

S

Sang Il Seok

Department of Energy Engineering, School of Energy and Chemical Engineering

R

Riming Nie

W

Wanlin Guo

National Key Laboratory of Mechanics and Control for Aerospace Structures and Key Laboratory for Intelligent Nano Materials and Devices of the Ministry of Education, Institute for Frontier Science