Polarons are probes of the dynamic nanoscale environments found in electrochemically doped π-conjugated polymers

M Megan R. Brown (Department of Chemistry, University of Kentucky) Z Zhiting Chen (Department of Chemistry and Biochemistry) A Arianna Magni (Department of Materials Science and Engineering) H Hong Li J Joel H. Bombile (Department of Chemistry, University of Kentucky) S Sa Suo (Emory University, 1515 Dickey Dr., Atlanta, Georgia 30322, United States) T Tianquan Lian (Emory University, 1515 Dickey Dr., Atlanta, Georgia 30322, United States) M Michele S. Myong (Chemistry Division, Brookhaven National Laboratory) J Jean-Luc Bredas (Department of Chemistry and Biochemistry) M Matthew J. Bird (Chemistry Division) N Neal R. Armstrong (Department of Chemistry and Biochemistry) A Alberto Salleo E Erin L. Ratcliff (Department of Chemistry and Biochemistry) C Chad Risko (Department of Chemistry)

Abstract

Charge carriers (i.e., polarons) in electrochemically doped organic (semi)conductors are proposed to be regulated by several physicochemical features, including the chemical compositions and structures of the π-conjugated frameworks of the semiconductor building blocks, the chemistry of the electrolyte (considering both the salt and solvent), multiscale and time-dependent morphology variations across the material as a function of electrochemical processes, and assorted permutations of these and other factors. To address these hypotheses, we investigate the energetic, optoelectronic, chemical, and local structural properties of negative polarons (radical anions) as a function of electrochemical doping in the donor–acceptor, π-conjugated redox copolymer P(NDI2OD-T2), also referred to as N2200. A critical finding is that there is not just “one type” of polaron in electrochemically doped P(NDI2OD-T2). Rather, an ensemble of polarons exists, with the polarons having optoelectronic signatures that are defined by their nanoscale environments. Importantly, the polaron optical signatures serve as local probes for how the operando electrochemical environments are dynamically working in concert to facilitate charge transport. Collectively, the distinctive and extensive integration of theory and measurement science presented here establishes a baseline for the roles that semiconductor and electrolyte chemistries and dynamic structural features have on polarons in electrochemically doped organic semiconductors and how these factors influence the energetics and rates of polaron transport.

Article Details

Volume / Issue Vol. 123, Issue 29
Published July 21, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

M

Megan R. Brown

Department of Chemistry, University of Kentucky

Z

Zhiting Chen

Department of Chemistry and Biochemistry

A

Arianna Magni

Department of Materials Science and Engineering

H

Hong Li

J

Joel H. Bombile

Department of Chemistry, University of Kentucky

S

Sa Suo

Emory University, 1515 Dickey Dr., Atlanta, Georgia 30322, United States

T

Tianquan Lian

Emory University, 1515 Dickey Dr., Atlanta, Georgia 30322, United States

M

Michele S. Myong

Chemistry Division, Brookhaven National Laboratory

J

Jean-Luc Bredas

Department of Chemistry and Biochemistry

M

Matthew J. Bird

Chemistry Division

N

Neal R. Armstrong

Department of Chemistry and Biochemistry

A

Alberto Salleo

E

Erin L. Ratcliff

Department of Chemistry and Biochemistry

C

Chad Risko

Department of Chemistry