Counterion‐Controlled Photocatalytic Doping of Organic Semiconductors

T Tiefeng Liu (College of Chemical and Biological Engineering) Z Zesheng Liu (The Institute of Technological Sciences, Hubei Key Laboratory of Electronic Manufacturing and Packaging Integration, Wuhan University 1 , Wuhan 430072,) I Ihor Sahalianov Q Qiao He S Sang Young Jeong (Department of Chemistry, Korea University, Anamro 145, Seoul 02841, Republic of Korea) H Huotian Zhang (Department of Physics Chemistry and Biology (IFM) Linköping University Linköping 58183 Sweden) Q Qifan Li (Laboratory of Organic Electronics Department of Science and Technology Linköping University Norrköping Sweden) C Chi‐Yuan Yang (n‐ink AB Norrköping SE‐60221 Sweden) J Junpeng Ji L Lize Bynens (Hasselt University, Institute for Materials Research (imo-imomec), Design & Synthesis of Organic Semiconductors (DSOS), Martelarenlaan 42, B-3500 Hasselt, Belgium) W Wouter Maes (Hasselt University, Institute for Materials Research (imo-imomec), Design & Synthesis of Organic Semiconductors (DSOS), Martelarenlaan 42, B-3500 Hasselt, Belgium) F Feng Gao H Han Young Woo M Martin Heeney (Division of Physical Sciences & Engineering, Chemistry Program) G Glib Baryshnikov (Laboratory of Organic Electronics, Department of Science and Technology) M Mats Fahlman S Simone Fabiano (Laboratory of Organic Electronics, Department of Science and Technology, Linköping University)

Abstract

ABSTRACT Photocatalytic doping is a versatile and potentially sustainable strategy to control charge accumulation and transport in organic semiconductors (OSCs). In this process, light‐activated photocatalysts (PCs) act as electron shuttles, oxidizing or reducing OSCs under mild conditions, while redox‐inert salts supply counterions to stabilize the resulting charges. Although the energetics of PC/OSC systems are well studied, the influence of counterions has not yet been systematically examined. Here, we show that counterion size and interaction with the PC critically govern photocatalytic doping efficiency. Using acridinium‐based PCs with lithium salts of varying anion size, we find that smaller anions such as bis(fluorosulfonyl)imide (FSI − ) suppress PC aggregation, enhance electron transfer, and yield conductivities up to 2000 S cm −1 in PBTTT derivatives. Spectroscopic and density functional theory (DFT) analyses show that FSI − disrupts Acr‐Me + stacking and increases its electron affinity by ∼0.1 eV relative to bulkier anions. These results uncover counterion size as a key design parameter for optimizing photocatalytic doping in OSCs.

Article Details

Volume / Issue Vol. 38, Issue 25
Published May 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (17)

T

Tiefeng Liu

College of Chemical and Biological Engineering

Z

Zesheng Liu

The Institute of Technological Sciences, Hubei Key Laboratory of Electronic Manufacturing and Packaging Integration, Wuhan University 1 , Wuhan 430072,

I

Ihor Sahalianov

Q

Qiao He

S

Sang Young Jeong

Department of Chemistry, Korea University, Anamro 145, Seoul 02841, Republic of Korea

H

Huotian Zhang

Department of Physics Chemistry and Biology (IFM) Linköping University Linköping 58183 Sweden

Q

Qifan Li

Laboratory of Organic Electronics Department of Science and Technology Linköping University Norrköping Sweden

C

Chi‐Yuan Yang

n‐ink AB Norrköping SE‐60221 Sweden

J

Junpeng Ji

L

Lize Bynens

Hasselt University, Institute for Materials Research (imo-imomec), Design & Synthesis of Organic Semiconductors (DSOS), Martelarenlaan 42, B-3500 Hasselt, Belgium

W

Wouter Maes

Hasselt University, Institute for Materials Research (imo-imomec), Design & Synthesis of Organic Semiconductors (DSOS), Martelarenlaan 42, B-3500 Hasselt, Belgium

F

Feng Gao

H

Han Young Woo

M

Martin Heeney

Division of Physical Sciences & Engineering, Chemistry Program

G

Glib Baryshnikov

Laboratory of Organic Electronics, Department of Science and Technology

M

Mats Fahlman

S

Simone Fabiano

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University