TY - JOUR
T1 - A model for equilibrium swelling of the upper critical solution temperature type thermoresponsive hydrogels
AU - Drozdov, Aleksey D.
AU - deClaville Christiansen, Jesper
N1 - Funding Information:
Financial support by Innovationsfonden (Innovation Fund Denmark, project 9091‐00010B) is gratefully acknowledged.
Publisher Copyright:
© 2021 Society of Industrial Chemistry.
PY - 2022/2/1
Y1 - 2022/2/1
N2 - Thermoresponsive gels of the upper critical solution temperature (UCST) type shrink below their critical temperature and swell above it. Changes in water uptake by these gels are driven by thermally induced dissociation of hydrogen or ionic bonds between chains. A simple model is developed for the description of the equilibrium swelling of thermophilic gels with hydrogen bonds. To confirm its ability to describe observations, equilibrium swelling diagrams are fitted on poly(acrylamide-acrylic acid) and poly(acrylamide-acrylonitrile) macroscopic gels and microgels with various structures (copolymer gels, gels with interpenetrating networks, nanocomposite gels), as well as on biocompatible poly(N-acryloyl-glycinamide) and poly(allylurea-co-allylamine) gels. Numerical simulation reveals that material parameters evolve consistently with molar fractions of crosslinker, hydrophobic and hydrophilic comonomers in the feed, degree of ionization of functional groups, and concentration of nanofiller. It is shown that the model can also be applied to describe observations on thermophilic zwitterionic gels.
AB - Thermoresponsive gels of the upper critical solution temperature (UCST) type shrink below their critical temperature and swell above it. Changes in water uptake by these gels are driven by thermally induced dissociation of hydrogen or ionic bonds between chains. A simple model is developed for the description of the equilibrium swelling of thermophilic gels with hydrogen bonds. To confirm its ability to describe observations, equilibrium swelling diagrams are fitted on poly(acrylamide-acrylic acid) and poly(acrylamide-acrylonitrile) macroscopic gels and microgels with various structures (copolymer gels, gels with interpenetrating networks, nanocomposite gels), as well as on biocompatible poly(N-acryloyl-glycinamide) and poly(allylurea-co-allylamine) gels. Numerical simulation reveals that material parameters evolve consistently with molar fractions of crosslinker, hydrophobic and hydrophilic comonomers in the feed, degree of ionization of functional groups, and concentration of nanofiller. It is shown that the model can also be applied to describe observations on thermophilic zwitterionic gels.
UR - http://www.scopus.com/inward/record.url?scp=85116826392&partnerID=8YFLogxK
U2 - 10.1002/pi.6304
DO - 10.1002/pi.6304
M3 - Article
AN - SCOPUS:85116826392
VL - 71
SP - 212
EP - 226
JO - Polymer International
JF - Polymer International
SN - 0959-8103
IS - 2
ER -