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  4. Mechanical Acceleration of Ester Bond Hydrolysis in Polymers
 
research article

Mechanical Acceleration of Ester Bond Hydrolysis in Polymers

Wang, Jian  
•
Gao, Xiaobin  
•
Boarino, Alice  
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November 22, 2022
Macromolecules

Polymers containing ester bonds are ubiquitous. Often, these materials are mechanically challenged, which impacts their stability and degradation. While the accelerative effect of force on the degradation of polyester polymers is well recognized, little is known about the identity of the bonds that are cleaved, the nature of the cleavage reactions, and the force sensitivity of these processes. To provide molecular-level insights into the force-accelerated degradation of ester bonds, this study has investigated the degradation of ester bond-containing polymers in dilute solution ultrasonication experiments. These experiments revealed that chain degradation proceeds via concomitant homolytic carbon-carbon scission as well as ester bond hydrolysis, and demonstrated that ester bond hydrolysis is force accelerated, both under neutral and basic conditions. Experiments with side chain ester functional polymers, in contrast, did not indicate ester bond hydrolysis, which suggests that the molecular force does not lead to the activation of ester bonds that are orthogonal to the polymer backbone.

  • Details
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Type
research article
DOI
10.1021/acs.macromol.2c01789
Web of Science ID

WOS:000892640200001

Author(s)
Wang, Jian  
Gao, Xiaobin  
Boarino, Alice  
Celerse, Frederic  
Corminboeuf, Clemence  
Klok, Harm-Anton  
Date Issued

2022-11-22

Publisher

AMER CHEMICAL SOC

Published in
Macromolecules
Volume

55

Issue

22

Start page

10145

End page

10152

Subjects

Polymer Science

•

Polymer Science

•

ultrasonic degradation

•

molecular-weight

•

mechanochemistry

•

kinetics

•

force

•

announcement

•

cellulose

•

strain

•

polystyrene

•

temperature

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LP  
LCMD  
Available on Infoscience
January 2, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/193523
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