Skip to main content
Journal cover image

Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks.

Publication ,  Journal Article
Beech, HK; Wang, S; Sen, D; Rota, D; Kouznetsova, TB; Arora, A; Rubinstein, M; Craig, SL; Olsen, BD
Published in: ACS macro letters
December 2023

The fracture of polymer networks is tied to the molecular behavior of strands within the network, yet the specific molecular-level processes that determine the mechanical limits of a network remain elusive. Here, the question of reactivity-guided fracture is explored in otherwise indistinguishable end-linked networks by tuning the relative composition of strands with two different mechanochemical reactivities. Increasing the substitution of less mechanochemically reactive ("strong") strands into a network comprising more reactive ("weak") strands has a negligible impact on the fracture energy until the strong strand content reaches approximately 45%, at which point the fracture energy sharply increases with strong strand content. This aligns with the measured strong strand percolation threshold of 48 ± 3%, revealing that depercolation, or the loss of a percolated network structure, is a necessary criterion for crack propagation in a polymer network. Coarse-grained fracture simulations agree closely with the tearing energy trend observed experimentally, confirming that weak strand scissions dominate the failure until the strong strands approach percolation. The simulations further show that twice as many strands break in a mixture than in a pure network.

Duke Scholars

Published In

ACS macro letters

DOI

EISSN

2161-1653

ISSN

2161-1653

Publication Date

December 2023

Volume

12

Issue

12

Start / End Page

1685 / 1691

Related Subject Headings

  • 3406 Physical chemistry
  • 3403 Macromolecular and materials chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0303 Macromolecular and Materials Chemistry
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Beech, H. K., Wang, S., Sen, D., Rota, D., Kouznetsova, T. B., Arora, A., … Olsen, B. D. (2023). Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks. ACS Macro Letters, 12(12), 1685–1691. https://doi.org/10.1021/acsmacrolett.3c00559
Beech, Haley K., Shu Wang, Devosmita Sen, Dechen Rota, Tatiana B. Kouznetsova, Akash Arora, Michael Rubinstein, Stephen L. Craig, and Bradley D. Olsen. “Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks.ACS Macro Letters 12, no. 12 (December 2023): 1685–91. https://doi.org/10.1021/acsmacrolett.3c00559.
Beech HK, Wang S, Sen D, Rota D, Kouznetsova TB, Arora A, et al. Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks. ACS macro letters. 2023 Dec;12(12):1685–91.
Beech, Haley K., et al. “Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks.ACS Macro Letters, vol. 12, no. 12, Dec. 2023, pp. 1685–91. Epmc, doi:10.1021/acsmacrolett.3c00559.
Beech HK, Wang S, Sen D, Rota D, Kouznetsova TB, Arora A, Rubinstein M, Craig SL, Olsen BD. Reactivity-Guided Depercolation Processes Determine Fracture Behavior in End-Linked Polymer Networks. ACS macro letters. 2023 Dec;12(12):1685–1691.
Journal cover image

Published In

ACS macro letters

DOI

EISSN

2161-1653

ISSN

2161-1653

Publication Date

December 2023

Volume

12

Issue

12

Start / End Page

1685 / 1691

Related Subject Headings

  • 3406 Physical chemistry
  • 3403 Macromolecular and materials chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0303 Macromolecular and Materials Chemistry