4.1 Article

Kinetic Monte Carlo Tool for Kinetic Modeling of Linear Step-Growth Polymerization: Insight into Recycling of Polyurethanes

期刊

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/mats.202100058

关键词

ceiling temperature; condensation polymerization; kinetic modeling; kinetic Monte Carlo; pathways-level model; polyaddition; polyurethanes; step growth polymerization

资金

  1. U.S. Department of Energy's Office of Energy Efficiency and Renewable Energy (EERE) [DE-EE0008928]
  2. Institute for Sustainability and Energy (ISEN) at Northwestern University
  3. Ryan Fellowship
  4. International Institute for Nanotechnology at Northwestern University
  5. National Science Foundation Graduate Research Fellowship [DGE-1842165]
  6. National Science Foundation (NSF) Partnerships for International Research and Education (PIRE) program [1743748]
  7. Northwestern University [DE-AC36-08GO28308]

向作者/读者索取更多资源

A kinetic Monte Carlo model of polyurethane polymerization is developed and used to investigate the effect of unequal reactivity of isocyanate on oligomer distributions. Reverse reactions are added to the framework for equilibrium chain length distributions calculations. The concept of ceiling temperature is extended to provide a measure of conditions favoring depolymerization for recycling.
A kinetic Monte Carlo model of polyurethane polymerization which explicitly tracks the polymer sequences is developed and shared. This model is benchmarked against theoretical and experimental polyurethane data and used to investigate the effect on oligomer distributions of unequal reactivity of the first and second isocyanate to react. The reverse reactions using thermodynamic consistency are then added to the framework, and analogous to the addition polymerization concept of ceiling temperature, equilibrium chain length distributions at various temperatures are calculated. For a mixture of three monomers AA, BB, and CC, where BB and CC do not react with one another, are present in stoichiometric proportions, and have different enthalpies of reaction with AA, an odd-even effect emerges. Odd length chains are more likely than even length chains for temperatures at which BB and CC have significantly different equilibrium conversions. The concept of ceiling temperature that is typically cited for addition polymers is extended here to provide a measure of conditions under which depolymerization for recycling is favored.

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