Kinetic Programming of Dynamic Covalent Networks via Isomer-Pure Diels–Alder Kinetics

Abstract The precise control of material properties through molecular-level architecture remains an enormous challenge in materials science. Here, we present a platform for the kinetic programming of covalently cross-linked networks by translating selective cycloreversion kinetics of isomer-pure endo- and exo-Diels–Alder (DA) diastereomers into controlled material responses. By combining experimental kinetic studies with density functional theory (DFT) calculations, we identify a selectivity window at 70 °C that enables sequential, temperature-selective cycloreversion. We demonstrate that these thermolabile motifs retain their molecular-level kinetic selectivity when incorporated into bulk macromolecular networks, as confirmed by differential scanning calorimetry (DSC) and high-resolution magic-angle spinning (HR-MAS) NMR spectroscopy. To demonstrate such precise kinetic control, we fabricate mono- and multimaterial microstructures via multiphoton printing that can be degraded in a stepwise and temperature-selective manner. We herein establish a robust design strategy for responsive materials for multimaterial 3D microfabrication, whose distinct macroscopic changes are programmed at the stereochemical level of a single molecular motif.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-10-06
DOI
https://doi.org/10.1021/jacs.6c16577
Primary Topic
Polymer composites and self-healing
Type
article
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article

Kinetic Programming of Dynamic Covalent Networks via Isomer-Pure Diels–Alder Kinetics

Christopher Barner‐Kowollik, Hendrik Frisch, Howard M. Foster, Steven C. Gauci et al.
Journal of the American Chemical Society
Polymer composites and self-healing
article

Kinetic Programming of Dynamic Covalent Networks via Isomer-Pure Diels–Alder Kinetics

Christopher Barner‐Kowollik, Hendrik Frisch, Howard M. Foster, Steven C. Gauci, Aaron S. Micallef, Martin Wegener, Julian Fanelli, Florian A. Feist, Jisu Kim, Xiaodong Wang
article en

Abstract

Abstract The precise control of material properties through molecular-level architecture remains an enormous challenge in materials science. Here, we present a platform for the kinetic programming of covalently cross-linked networks by translating selective cycloreversion kinetics of isomer-pure endo- and exo-Diels–Alder (DA) diastereomers into controlled material responses. By combining experimental kinetic studies with density functional theory (DFT) calculations, we identify a selectivity window at 70 °C that enables sequential, temperature-selective cycloreversion. We demonstrate that these thermolabile motifs retain their molecular-level kinetic selectivity when incorporated into bulk macromolecular networks, as confirmed by differential scanning calorimetry (DSC) and high-resolution magic-angle spinning (HR-MAS) NMR spectroscopy. To demonstrate such precise kinetic control, we fabricate mono- and multimaterial microstructures via multiphoton printing that can be degraded in a stepwise and temperature-selective manner. We herein establish a robust design strategy for responsive materials for multimaterial 3D microfabrication, whose distinct macroscopic changes are programmed at the stereochemical level of a single molecular motif.

Journal of the American Chemical Society
Karlsruhe Institute of Technology (DE), Queensland University of Technology (AU)
Openalex Percentile: Top 25%
Polymer composites and self-healing
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Kinetic Programming of Dynamic Covalent Networks via Isomer-Pure Diels–Alder Kinetics — Christopher Barner‐Kowollik, Hendrik Frisch, et al. · Journal of the American Chemical Society (2026) | TGRS Research Map | TGRS