Linker‐Engineered Dimeric Acceptors Afford Efficient Organic Photocatalytic Hydrogen Evolution via Tailored Nanomorphology for Long‐Lived Charge Accumulation

J Jin‐Woo Lee (Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) C Cheng Sun Y Yang Song (Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris (CMCP), 4 place Jussieu, F-75005 Paris, France) G Guanru Dong (Department of Chemistry Chemistry Research Laboratory University of Oxford Oxford UK) K Keren Ai (Department of Chemistry) S Stanley Alfred Cazaly (School of Engineering and Materials Science Queen Mary University of London London UK) F Flurin Eisner (School of Engineering and Materials Science Queen Mary University of London London E1 4NS UK) B Bumjoon J. Kim (Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) Z Zeinab Hamid (Chemistry Research Laboratory, University of Oxford, 12 Mansfield Road, Oxford OX1 3TA, U.K.) I Iain McCulloch (Chemistry Research Laboratory, University of Oxford, 12 Mansfield Road, Oxford OX1 3TA, U.K.) Y Yun‐Hi Kim (Department of Chemistry and RIMA Gyeongsang National University Jinju Republic of Korea) J James R. Durrant (Chemistry Research Laboratory)

Abstract

ABSTRACT Organic bulk‐heterojunction (BHJ) nanoparticles are promising candidates for solar‐to‐hydrogen conversion. While the development of organic photocatalysts (OPCs) has leveraged advances in organic photovoltaics (OPVs), molecular design rules tailored to photocatalysis remain underdeveloped. Here we introduce linker‐engineered dimeric acceptors that tune self‐assembly and thereby control BHJ nanoparticle morphology, enabling high‐performance OPCs. Two dimer acceptors, DY1 (unfused linker) and DY2 (fused linker), are synthesised from a monomer analogue (MY), establishing a self‐assembly trend of MY > DY2 > DY1. The stronger intermolecular assembly of MY is consistent with a quasi‐core–shell morphology that reduces catalytically accessible donor–acceptor interfaces, whereas the weaker intermolecular assembly of DY1 is associated with a more intermixed morphology and increased recombination losses. In contrast, DY2 exhibits a morphology consistent with improved pathway continuity and sufficient donor/acceptor exposure at the particle surface, supporting enhanced accumulation of long‐lived, surface‐stabilised charges. Consequently, PM6:DY2 OPCs deliver a hydrogen evolution rate of 25.3 µmol h −1 cm −2 , outperforming PM6:MY (1.9 µmol h −1 cm −2 ) and PM6:DY1 (11.9 µmol h −1 cm −2 ). Notably, this performance trend contrasts with that of the corresponding OPVs, suggesting that photovoltaic design principles do not necessarily translate directly to photocatalysts.

Article Details

Volume / Issue Vol. 38, Issue 41
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

J

Jin‐Woo Lee

Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

C

Cheng Sun

Y

Yang Song

Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris (CMCP), 4 place Jussieu, F-75005 Paris, France

G

Guanru Dong

Department of Chemistry Chemistry Research Laboratory University of Oxford Oxford UK

K

Keren Ai

Department of Chemistry

S

Stanley Alfred Cazaly

School of Engineering and Materials Science Queen Mary University of London London UK

F

Flurin Eisner

School of Engineering and Materials Science Queen Mary University of London London E1 4NS UK

B

Bumjoon J. Kim

Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

Z

Zeinab Hamid

Chemistry Research Laboratory, University of Oxford, 12 Mansfield Road, Oxford OX1 3TA, U.K.

I

Iain McCulloch

Chemistry Research Laboratory, University of Oxford, 12 Mansfield Road, Oxford OX1 3TA, U.K.

Y

Yun‐Hi Kim

Department of Chemistry and RIMA Gyeongsang National University Jinju Republic of Korea

J

James R. Durrant

Chemistry Research Laboratory