Tunable biodegradable co-polyester films with enhanced metal adhesion and moisture barrier properties

Technology
Conceptual
University

Novel biodegradable co-polyester films synthesized via radical co-polymerization of cyclic ketene acetals with functional co-monomers, enabling tunable hydrophobicity, improved metal adhesion, and enhanced moisture barrier properties for sustainable packaging and biomedical applications.

Overview

This research proposes a new approach to engineering biodegradable polyester films with tailored physicochemical properties. By using radical co-polymerization of cyclic ketene acetals with co-monomers such as (meth)acrylamides and (meth)acrylates containing phosphonates, the resulting co-polyesters can be tuned for specific performance characteristics. The technology targets three key improvements: enhanced metal adhesion, improved moisture barrier properties, and superior film forming capability. These advances address critical limitations in existing biodegradable polymers, opening pathways for sustainable alternatives in packaging, coatings, and biomedical device applications where conventional polyesters underperform.

Technical specifications

Core synthesis approach:

  • Radical co-polymerization of cyclic ketene acetals introduces in-chain ester linkages that enable controlled biodegradation
  • Incorporation of (meth)acrylamide and (meth)acrylate co-monomers with phosphonate groups to tailor hydrophobicity
  • Side-chain engineering to adjust matrix hydrophobicity and tune physicochemical behavior
  • Optional photochemical crosslinking to control crosslink density and further tune material properties

Targeted performance improvements:

  • Improved metal adhesion for coating and laminate applications
  • Reduced moisture transport for enhanced barrier performance
  • Optimized film forming properties for processing flexibility
  • Controlled biodegradation rates appropriate for end-use conditions
Technology readiness level

This technology is at an early research stage. The research team has prior experience synthesizing thin, biodegradable co-polyester films with improved resistance to protein adsorption and modifying physico-chemical properties of similar polymer systems. Future validation will involve synthesizing co-polymers, quantifying improvements in metal adhesion, moisture transport reduction, and film forming properties, and measuring biodegradation rates under application-relevant conditions. The work will establish molecular structure-property relationships needed to optimize performance before advancing toward application development and scale-up.


About North Carolina State University

North Carolina State University is a large, comprehensive public land‑grant research university in Raleigh. Its on‑campus research and technology park co‑locates corporate R&D groups, government partners, and faculty labs, enabling shared facilities, prototyping, and agile contracting. Located in North Carolina’s Research Triangle, partners tap a dense regional ecosystem while engaging through a statewide extension network and a mature co‑op program that deliver field deployment and workforce pipelines. Multiple pilot and demonstration facilities support scale‑up and validation toward pre‑commercial readiness. Research is supported by competitive funding from major federal agencies, including NSF, USDA, DOE, and DOD, and a dedicated technology transfer office with clear IP pathways helps accelerate commercialization.

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