Strengthened Interfacial Coupling Between Self‐Assembled Monolayers and Bulk Heterojunctions Enables Thermally Stable Organic Solar Cells

G Gengxin Du (Department of Materials Science and Engineering) Z Zhihong Wang S Songyang Yuan (School of Chemistry, Guangzhou Key Laboratory of Materials for Energy Conversion and Storage, Key Laboratory of Electronic Chemicals for Integrated Circuit Packaging) W Wenlin Jiang S Shanchao Ouyang C Chengda Ge (Department of Materials Science and Engineering) T Tian Xia Y Yiting Jiang (State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering) N Nan Zhang Y Yidan An L Lingyi Ke (Department of Materials Science and Engineering) S Sai Wing Tsang (Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China) F Francis R. Lin Q Qian Li A Alex K.‐Y. Jen (Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong SAR) X Xuechen Jiao (National Synchrotron Radiation Laboratory) Y Yong Zhang H Hin‐Lap Yip (Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China)

Abstract

ABSTRACT Self‐assembled monolayers (SAMs) have emerged as an effective interfacial strategy for improving charge extraction and interfacial energetics in organic solar cells (OSCs); however, limited operational stability, particularly under prolonged high‐temperature conditions, remains a critical challenge for practical deployment. Here, we systematically engineer SAM terminal groups to elucidate how interfacial molecular interactions between the SAM and the bulk‐heterojunction active layer govern device efficiency and thermal stability. Expanding the aromatic ring size of the SAM pendant groups enhances π–π and van der Waals interactions, leading to stronger molecular coupling and a more intact and robust interfacial structure at both the electrode/SAM and SAM/active‐layer interfaces. In particular, SAMs incorporating naphthalene pendant groups exhibit significantly strengthened intermolecular interactions, effectively suppressing thermally induced morphological degradation under elevated temperatures. As a result, PM6:BTP‐eC9‐based binary and ternary organic solar cells achieve power conversion efficiencies of 19.73% and 20.15%, respectively. Notably, devices employing this interfacial molecular locking strategy deliver a T 90 operational lifetime of 150 h under maximum power point tracking at 85°C, representing an order‐of‐magnitude improvement compared to SAMs without pendant groups. These findings establish aromatic terminal group expansion as an effective molecular design strategy for simultaneously enhancing efficiency and thermal stability in organic solar cells.

Article Details

Volume / Issue Vol. 38, Issue 40
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (18)

G

Gengxin Du

Department of Materials Science and Engineering

Z

Zhihong Wang

S

Songyang Yuan

School of Chemistry, Guangzhou Key Laboratory of Materials for Energy Conversion and Storage, Key Laboratory of Electronic Chemicals for Integrated Circuit Packaging

W

Wenlin Jiang

S

Shanchao Ouyang

C

Chengda Ge

Department of Materials Science and Engineering

T

Tian Xia

Y

Yiting Jiang

State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering

N

Nan Zhang

Y

Yidan An

L

Lingyi Ke

Department of Materials Science and Engineering

S

Sai Wing Tsang

Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China

F

Francis R. Lin

Q

Qian Li

A

Alex K.‐Y. Jen

Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong SAR

X

Xuechen Jiao

National Synchrotron Radiation Laboratory

Y

Yong Zhang

H

Hin‐Lap Yip

Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China