A Donor–Acceptor‐Type Two‐Dimensional Poly(Arylene Vinylene) for Efficient Electron Transport and Sensitive Chemiresistors

R Ruyan Zhao (Department of Chemistry, University of Toronto, 80 St. George Street, Toronto M5S 3H6, Ontario, Canada) W Wei Wang Y Yamei Liu P Petko Petkov (Faculty of Chemistry and Pharmacy) A Arafat Hossain Khan L Lei Gao P Peng Zhang E Eike Brunner (Chair of Bioanalytical Chemistry) H Hai I. Wang (Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany) S Shivam Singh (Chair For Emerging Electronic Technologies TUD Dresden University of Technology Dresden Germany) S Shirong Huang (Institute for Materials Science and Max Bergmann Center for Biomaterials TUD Dresden Technische Universität Dresden Dresden 01062 Germany) L Luis Antonio Panes‐Ruiz (Institute for Materials Science and Max Bergmann Center for Biomaterials TUD Dresden Technische Universität Dresden Dresden 01062 Germany) Y Yana Vaynzof (Chair for Emerging Electronic Technologies) M Mischa Bonn G Gianaurelio Cuniberti (Institute for Materials Science and Max Bergmann Center of Biomaterials) M Mingchao Wang (Max Planck Institute of Microstructure Physics) X Xinliang Feng

Abstract

Abstract Two‐dimensional (2D) conjugated polymers and their layer‐stacked 2D conjugated covalent organic frameworks, such as 2D poly(arylene vinylene)s (2D PAVs), are emerging as promising polymer semiconductors for electronics and photocatalysis. However, achieving narrow optical band gaps and efficient electron transport remains a significant challenge for this class of materials to enhance the device's performance. Here, we report a donor‐acceptor‐type 2D PAV ( 2DPAV‐TBDT‐IT , where TBDT = thienyl‐benzodithiophene and IT =  s ‐indacene‐1,3,5,7(2 H ,6 H )‐tetraone) synthesized via an Aldol‐type 2D polycondensation approach. Notably, 2DPAV‐TBDT‐IT benefits from an effective intralayer donor–acceptor effect, exhibiting an optical band gap of 1.15 eV, the smallest among the reported 2D conjugated polymers. Density functional theory calculations reveal a unique electron‐dominating transport for 2DPAV‐TBDT‐IT , with a strongly dispersive conduction band minimum and, thus, a small effective mass for electrons half that for holes. Additionally, terahertz spectroscopy measurements indicate a high charge mobility of 26 cm 2  V −1  s −1 at room temperature for the powder sample. Given the high electron‐deficiency of 2DPAV‐TBDT‐IT for facile electron injection from hazardous gases and the high‐mobility electron‐dominating transport in the material, we further fabricate chemiresistors from 2DPAV‐TBDT‐IT , showing ultrasensitive SO 2 analyte detection with limit of detection of 0.088 ppb, significantly surpassing the reported chemiresistive SO 2 sensors.

Article Details

Volume / Issue Vol. 64, Issue 24
Published June 10, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (17)

R

Ruyan Zhao

Department of Chemistry, University of Toronto, 80 St. George Street, Toronto M5S 3H6, Ontario, Canada

W

Wei Wang

Y

Yamei Liu

P

Petko Petkov

Faculty of Chemistry and Pharmacy

A

Arafat Hossain Khan

L

Lei Gao

P

Peng Zhang

E

Eike Brunner

Chair of Bioanalytical Chemistry

H

Hai I. Wang

Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany

S

Shivam Singh

Chair For Emerging Electronic Technologies TUD Dresden University of Technology Dresden Germany

S

Shirong Huang

Institute for Materials Science and Max Bergmann Center for Biomaterials TUD Dresden Technische Universität Dresden Dresden 01062 Germany

L

Luis Antonio Panes‐Ruiz

Institute for Materials Science and Max Bergmann Center for Biomaterials TUD Dresden Technische Universität Dresden Dresden 01062 Germany

Y

Yana Vaynzof

Chair for Emerging Electronic Technologies

M

Mischa Bonn

G

Gianaurelio Cuniberti

Institute for Materials Science and Max Bergmann Center of Biomaterials

M

Mingchao Wang

Max Planck Institute of Microstructure Physics

X

Xinliang Feng