Force‐Induced Selective Carbon‐Carbon Bond Cleavage in Mechanoresponsive Topochemical Polymers

Z Zitang Wei H Hanul Kim N Nazmul Haque Q Qixuan Hu (Davidson School of Chemical Engineering, Purdue University, West Lafayette, Indiana 47907, United States) K Ke Ma K Kang Wang S Shuchen Zhang X Xuyi Luo (Department of Chemistry) Y Yoon Ho Lee (Davidson School of Chemical Engineering Purdue University West Lafayette IN 47907 USA) S Siyoung Q. Choi (Department of Chemical and Biomolecular Engineering) C Chelsea S Davis (School of Materials Engineering Purdue University West Lafayette IN 47907 USA) B Brett M. Savoie (Department of Chemical and Biomolecular Engineering) L Letian Dou

Abstract

Abstract Mechanoresponsive polymeric materials that respond to mechanical deformation are highly valued for their potential in sensors, degradation studies, and optoelectronics. However, direct visualization and detection of these responses remain significant obstacles. In this study, novel mechanoresponsive polybiidenedionediyl (PBIT) derivative topochemical polymers are developed that depolymerize under mechanical forces, exhibiting a distinct and irreversible color change in response to grinding, milling, and compression. This color change is attributed to the alteration of polymer backbone conjugation during elongated Carbon‐Carbon (C─C) single bond cleavage. Quantum chemical pulling simulations on PBIT polymers reveals a force range of 4.3–5.0 nN associated with the selective cleavage of elongated C─C single bonds. This force range is comparable to that observed for typical homolytic mechanophores, supporting the mechanistic interpretation of homolytic bond scission under mechanical stress. C─C bond cleavage kinetic studies of PBIT under compression indicates that strong interchain interactions significantly increase the pressure needed to cleave the elongated C─C bonds. Additionally, PBIT polymer thin films are composited with polydimethylsiloxane to create free‐standing and robust thin films, which can serve as ink‐free and rewritable paper for writing and stress visualization applications. This advancement opens new possibilities for utilizing crystalline and brittle topochemical polymers in practical applications.

Article Details

Volume / Issue Vol. 38, Issue 2
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

Z

Zitang Wei

H

Hanul Kim

N

Nazmul Haque

Q

Qixuan Hu

Davidson School of Chemical Engineering, Purdue University, West Lafayette, Indiana 47907, United States

K

Ke Ma

K

Kang Wang

S

Shuchen Zhang

X

Xuyi Luo

Department of Chemistry

Y

Yoon Ho Lee

Davidson School of Chemical Engineering Purdue University West Lafayette IN 47907 USA

S

Siyoung Q. Choi

Department of Chemical and Biomolecular Engineering

C

Chelsea S Davis

School of Materials Engineering Purdue University West Lafayette IN 47907 USA

B

Brett M. Savoie

Department of Chemical and Biomolecular Engineering

L

Letian Dou