Leveraging the Activated Monomer Mechanism to Create Grafted Polymer Networks in Epoxide–Acrylate Hybrid Photopolymerizations

Author:

Dillman Brian F.1,Schissel Sage M.1,Jessop Julie L. P.1ORCID

Affiliation:

1. Department of Chemical & Biochemical Engineering, The University of Iowa, Iowa City, IA 52242, USA

Abstract

Hybrid epoxide–acrylate photopolymerization enables the temporal structuring of polymer networks for advanced material properties. The ability to design polymer network architectures and to tune mechanical properties can be realized through the control of the cationic active center propagation reaction (active chain end mechanism) relative to the cationic chain transfer reaction (activated monomer mechanism). Grafted polymer networks (GPNs) can be developed through the covalent bonding of epoxide chains to acrylate chains through hydroxyl substituents, making hydroxyl-containing acrylates a promising class of chain transfer agents. This work demonstrates the formation of these GPNs and explores the physical properties obtained through the control of hydroxyl content and hybrid formulation composition. The GPNs exhibit a lower glass transition temperature than the neat epoxide network and result in a more homogeneous network. Further investigations of hydroxyl-containing acrylates as chain transfer agents will generate a wider range of physical property options for photopolymerized hybrid coatings, sealants, and adhesives.

Funder

National Science Foundation

Publisher

MDPI AG

Reference47 articles.

1. Evaluation of initiator systems for controlled and sequentially curable free-radical/cationic hybrid photopolymerizations;Oxman;J. Polym. Sci. A Polym. Chem.,2005

2. Odian, G. (2004). Principles of Polymerization, John Wiley and Sons, Inc.. [4th ed.].

3. Randell, D.R. (1991). Radiation Curing of Polymers II, The Royal Society of Cambridge.

4. Fouassier, J. (1995). Photoinitiation, Photopolymerization, and Photocuring: Fundamentals and Applications, Hanser/Gardner Publication Inc.

5. Pappas, S.P. (1992). Radiation Curing: Science and Technology, Plenum Press.

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