Unveiling the Role of Compositional Drifts on the Tack of Pressure‐Sensitive‐Adhesives

Author:

Arrowood Anthony1ORCID,Li Morris1,Nassr Mostafa1ORCID,Lynd Nathaniel A.1ORCID,Sanoja Gabriel E.1ORCID

Affiliation:

1. McKetta Department of Chemical Engineering The University of Texas at Austin Austin TX 78712 USA

Abstract

AbstractPressure‐sensitive‐adhesives (PSAs) are pervasive in electronic, automobile, packaging, and biomedical applications due to their ability to stick to numerous surfaces without undergoing chemical reactions. These materials are typically synthesized by the free radical copolymerization of alkyl acrylates and acrylic acid, leading to an ensemble of polymer chains with varying composition and molecular weight. Here, reversible addition−fragmentation chain‐transfer (RAFT) copolymerizations in a semi‐batch reactor are used to tailor the molecular architecture and bulk mechanical properties of acrylic copolymers. In the absence of cross‐links, the localization of acrylic acid toward the chain ends leads to microphase separation, creep resistance, and enhanced tack. However, in the presence of Al(acac)3 crosslinker, the creep resistance remains unchanged and mostly the large‐strain mechanical properties are affected. This behavior is attributed to microphase separation, but also to a change in the energy required to break physical associations, and untangle and elongate associative polymers to large deformations.

Funder

Office of Science

Division of Chemistry

Publisher

Wiley

Subject

Materials Chemistry,Organic Chemistry,Polymers and Plastics,Physical and Theoretical Chemistry,Condensed Matter Physics

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