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An elastomer with ultrahigh strain-induced crystallization.

Publication ,  Journal Article
Hartquist, CM; Lin, S; Zhang, JH; Wang, S; Rubinstein, M; Zhao, X
Published in: Science advances
December 2023

Strain-induced crystallization (SIC) prevalently strengthens, toughens, and enables an elastocaloric effect in elastomers. However, the crystallinity induced by mechanical stretching in common elastomers (e.g., natural rubber) is typically below 20%, and the stretchability plateaus due to trapped entanglements. We report a class of elastomers formed by end-linking and then deswelling star polymers with low defects and no trapped entanglements, which achieve strain-induced crystallinity of up to 50%. The deswollen end-linked star elastomer (DELSE) reaches an ultrahigh stretchability of 12.4 to 33.3, scaling beyond the saturated limit of common elastomers. The DELSE also exhibits a high fracture energy of 4.2 to 4.5 kJ m-2 while maintaining low hysteresis. The heightened SIC and stretchability synergistically promote a high elastocaloric effect with an adiabatic temperature change of 9.3°C.

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Published In

Science advances

DOI

EISSN

2375-2548

ISSN

2375-2548

Publication Date

December 2023

Volume

9

Issue

50

Start / End Page

eadj0411
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Hartquist, C. M., Lin, S., Zhang, J. H., Wang, S., Rubinstein, M., & Zhao, X. (2023). An elastomer with ultrahigh strain-induced crystallization. Science Advances, 9(50), eadj0411. https://doi.org/10.1126/sciadv.adj0411
Hartquist, Chase M., Shaoting Lin, James H. Zhang, Shu Wang, Michael Rubinstein, and Xuanhe Zhao. “An elastomer with ultrahigh strain-induced crystallization.Science Advances 9, no. 50 (December 2023): eadj0411. https://doi.org/10.1126/sciadv.adj0411.
Hartquist CM, Lin S, Zhang JH, Wang S, Rubinstein M, Zhao X. An elastomer with ultrahigh strain-induced crystallization. Science advances. 2023 Dec;9(50):eadj0411.
Hartquist, Chase M., et al. “An elastomer with ultrahigh strain-induced crystallization.Science Advances, vol. 9, no. 50, Dec. 2023, p. eadj0411. Epmc, doi:10.1126/sciadv.adj0411.
Hartquist CM, Lin S, Zhang JH, Wang S, Rubinstein M, Zhao X. An elastomer with ultrahigh strain-induced crystallization. Science advances. 2023 Dec;9(50):eadj0411.

Published In

Science advances

DOI

EISSN

2375-2548

ISSN

2375-2548

Publication Date

December 2023

Volume

9

Issue

50

Start / End Page

eadj0411