Light-Matter Interactions Revealing Load-Induced Phase Mobility in Elastomers.

creep responses diffractions elastomers polyurea terahertz-based characterizations

Journal

Macromolecular rapid communications
ISSN: 1521-3927
Titre abrégé: Macromol Rapid Commun
Pays: Germany
ID NLM: 9888239

Informations de publication

Date de publication:
Apr 2023
Historique:
revised: 22 01 2023
received: 02 09 2022
medline: 7 4 2023
pubmed: 5 2 2023
entrez: 4 2 2023
Statut: ppublish

Résumé

Elastomers with segmental microstructure are a fascinating class of shock-tolerant and impact-resistant materials. However, their technological potential remains untapped due to a vague understanding of the molecular contributions to their superior mechanical behavior. Herein, in situ light-matter interactions, to reveal the extent of microstructural mobility by temporally exploiting molecular processes during creep response, are leveraged. The segmental microstructure comprises aromatic hard domains embedded within an aliphatic soft matrix. High-resolution digital image correlation reveals the development of strain striations, mild anisotropy, and the mechanisms responsible for domain mobility, where the rate of hard segment mobility is found to be 60% slower than that of the soft segment. Terahertz spectral analyses pinpoint the contributions of interchain hydrogen bonding of the hard segments and their significant conformational changes by observing spectral features at ≈1.2THz and ≈1.67THz. Moreover, the domain mobility is examined using experimental and computational light scattering approaches, uncovering dynamic scattering and elucidating the difference in the complex refractive index of the soft and hard segments. The study unlocks the pathway for quantitative measurements of elusive molecular mobility and conformational changes during mechanical loading and sheds light on the origin of the shock tolerance in some elastomeric polymers with segmental microstructure.

Identifiants

pubmed: 36738091
doi: 10.1002/marc.202200725
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e2200725

Subventions

Organisme : National Science Foundation
ID : 1925539
Organisme : The United States Department of Defense
ID : W911NF1410039
Organisme : The United States Department of Defense
ID : W911NF1810477

Informations de copyright

© 2023 The Authors. Macromolecular Rapid Communications published by Wiley-VCH GmbH.

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Auteurs

Nha Uyen Huynh (NU)

Experimental Mechanics Laboratory, Mechanical Engineering Department, San Diego State University, San Diego, CA, 92182, USA.

Behrad Koohbor (B)

Department of Mechanical Engineering, Rowan University, 201 Mullica Hill Rd., Glassboro, NJ, 08028, USA.

George Youssef (G)

Experimental Mechanics Laboratory, Mechanical Engineering Department, San Diego State University, San Diego, CA, 92182, USA.

Classifications MeSH