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Mechanophore cross-linking enhances ballistic energy dissipation of polymers.

Journal articles  - Journal Article
Sang, Z; Nguyen, ST; Ko, K; Lin, S; Jang, H; Gonzalez-Zapata, S; Fitz, S; Kai, Y; Kooi, S; Deng, C; Olvera de la Cruz, M; Koslowski, M ...
Published in: Nature
June 2026

Mechanical failure is a marked limitation for plastics used in structural, protective and coating applications. In particular, perforation under high-rate deformation is difficult to mitigate through conventional molecular design1,2. Cross-linking is widely used to improve the thermal and chemical stability of polymers, yet under mechanical deformation, it typically renders materials more brittle, limiting impact resistance and functional lifetime3. Overcoming this fundamental trade-off between stability and toughness remains a central challenge. Here we demonstrate that embedding a small fraction of force-sensitive mechanophores as cross-links into common polymers fundamentally reverses this trade-off, producing materials with substantially enhanced ballistic energy dissipation. At strain rates exceeding 107 s-1, we show that mechanophore-cross-linked networks absorb up to about 115% more energy than conventional thermosets and surpass even their uncross-linked thermoplastic counterparts. We attribute this behaviour to a force- and adiabatic-heating-driven local thermoset-to-thermoplastic transition, in which selective mechanophore scission facilitates viscoplastic deformation at the impact site while preserving network integrity in the surrounding regions. We demonstrate the generality of this strategy in both glassy polystyrene and rubbery styrene-butadiene-styrene triblock copolymers. These results establish mechanophore cross-linking as a design principle for converting commodity polymers into impact-resilient materials and open directions at the intersection of polymer mechanochemistry and extreme-strain-rate material behaviour.

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Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

June 2026

Volume

654

Issue

8117

Start / End Page

85 / 91

Related Subject Headings

  • General Science & Technology
 

Citation

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Sang, Z., Nguyen, S. T., Ko, K., Lin, S., Jang, H., Gonzalez-Zapata, S., … Johnson, J. A. (2026). Mechanophore cross-linking enhances ballistic energy dissipation of polymers. Nature, 654(8117), 85–91. https://doi.org/10.1038/s41586-026-10557-w
Sang, Zhen, Suong T. Nguyen, Kwangwook Ko, Senpeng Lin, Heecheol Jang, Simon Gonzalez-Zapata, Sullivan Fitz, et al. “Mechanophore cross-linking enhances ballistic energy dissipation of polymers.Nature 654, no. 8117 (June 2026): 85–91. https://doi.org/10.1038/s41586-026-10557-w.
Sang Z, Nguyen ST, Ko K, Lin S, Jang H, Gonzalez-Zapata S, et al. Mechanophore cross-linking enhances ballistic energy dissipation of polymers. Nature. 2026 Jun;654(8117):85–91.
Sang, Zhen, et al. “Mechanophore cross-linking enhances ballistic energy dissipation of polymers.Nature, vol. 654, no. 8117, June 2026, pp. 85–91. Epmc, doi:10.1038/s41586-026-10557-w.
Sang Z, Nguyen ST, Ko K, Lin S, Jang H, Gonzalez-Zapata S, Fitz S, Kai Y, Kooi S, Deng C, Olvera de la Cruz M, Koslowski M, Kulik HJ, Craig SL, Nelson KA, Johnson JA. Mechanophore cross-linking enhances ballistic energy dissipation of polymers. Nature. 2026 Jun;654(8117):85–91.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

June 2026

Volume

654

Issue

8117

Start / End Page

85 / 91

Related Subject Headings

  • General Science & Technology