Catalytic Polymerization of n‐Doped Poly(benzodifurandione) (n‐PBDF) Using Parts Per Million (ppm) Levels of Molybdenum Trioxide

G Guangchao Liu U Uttam Pal (Technical Research Centre, S. N. Bose National Centre for Basic Sciences, Salt Lake, Kolkata 700106, India) S Sanket Samal M Michael F. Espenship (Department of Chemistry) Y Yuanhe Li W Won‐June Lee (James Tarpo Jr. and Margaret Tarpo Department of Chemistry Purdue University West Lafayette Indiana 47907 USA) L Lawal Adewale Ogunfowora (James Tarpo Jr. and Margaret Tarpo Department of Chemistry Purdue University West Lafayette Indiana 47907 USA) L Liyan You (James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.) J Julia Laskin (James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.) J Jianguo Mei (James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.)

Abstract

Abstract The recent discovery of highly conductive, solution‐processable, n‐doped poly(benzodifurandione) (n‐PBDF) has significantly pushed the boundaries of organic electronics. However, to maximize its practical impact, an efficient, scalable and cost‐effective synthetic method is essential. Initially, n‐PBDF was synthesized via duroquinone‐mediated or copper‐catalyzed polymerizations, but these methods required prolonged dialysis, limiting their scalability. Our recent SeO 2 ‐catalyzed polymerization improved efficiency but still necessitated centrifugation and filtration to remove solid selenium byproducts. In this work, we introduce a highly efficient molybdenum trioxide (MoO 3 )‐catalyzed polymerization of n‐PBDF. Remarkably, MoO 3 at parts‐per‐million (ppm) concentrations achieves near‐quantitative monomer conversion (>99% by NMR), eliminating the need for purification. Kinetic studies demonstrate that this polymerization follows a chain‐growth mechanism, enabling the synthesis of high‐quality n‐PBDF polymers with controlled particle sizes and block copolymers. Mechanistic investigations reveal that MoO 3 mediates an oxidative pathway involving dimethyl sulfoxide (DMSO), with dimethyl sulfide (DMS) identified as the reduction product. This innovation not only provides a scalable, low‐cost route to high‐quality n‐PBDF but also unlocks new synthetic opportunities, significantly expanding the synthetic toolbox for functional polymers.

Article Details

Volume / Issue Vol. 64, Issue 36
Published September 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

G

Guangchao Liu

U

Uttam Pal

Technical Research Centre, S. N. Bose National Centre for Basic Sciences, Salt Lake, Kolkata 700106, India

S

Sanket Samal

M

Michael F. Espenship

Department of Chemistry

Y

Yuanhe Li

W

Won‐June Lee

James Tarpo Jr. and Margaret Tarpo Department of Chemistry Purdue University West Lafayette Indiana 47907 USA

L

Lawal Adewale Ogunfowora

James Tarpo Jr. and Margaret Tarpo Department of Chemistry Purdue University West Lafayette Indiana 47907 USA

L

Liyan You

James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.

J

Julia Laskin

James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.

J

Jianguo Mei

James Tarpo Jr. and Margaret Tarpo Department of Chemistry, Purdue University, West Lafayette, IN, USA.