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Title: Strength of fluid-filled soft composites across the elastofracture length
Materials that utilize heterogeneous microstructures to control macroscopic mechanical response are ubiquitous in nature. Yet, translating nature's lessons to create synthetic soft solids has remained challenging. This is largely due to the limited synthetic routes available for creating soft composites, particularly with submicron features, as well as uncertainty surrounding the role of such a microstructured secondary phase in determining material behavior. This work leverages recent advances in the development of photocrosslinkable thermogelling nanoemulsions to produce composite hydrogels with a secondary phase assembled at well controlled length scales ranging from tens of nm to tens of μm. Through analysis of the mechanical response of these fluid-filled composite hydrogels, it is found that the size scale of the secondary phase has a profound impact on the strength when at or above the elastofracture length. Moreover, this work shows that mechanical integrity of fluid–filled soft solids can be sensitive to the size scale of the secondary phase.  more » « less
Award ID(s):
1933487
PAR ID:
10415534
Author(s) / Creator(s):
; ;
Date Published:
Journal Name:
Soft Matter
Volume:
18
Issue:
26
ISSN:
1744-683X
Page Range / eLocation ID:
4897 to 4904
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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