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Closed-loop recyclable and biodegradable thioester-based covalent adaptable networks.

Pralay Ranjan Maity1, Chandan Upadhyay1, A S K Sinha2

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New covalent adaptable networks (CANs) are recyclable, biodegradable, and stable above 100 °C. These advanced materials offer reprocessability and degrade naturally, showcasing their environmental potential.

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Area of Science:

  • Materials Science
  • Polymer Chemistry
  • Sustainable Chemistry

Background:

  • Dynamic covalent chemistry enables the design of adaptable and recyclable polymer networks.
  • Developing materials with high service temperatures and environmental degradability is crucial for sustainable applications.

Purpose of the Study:

  • To synthesize and characterize novel closed-loop recyclable and biodegradable aliphatic covalent adaptable networks (CANs).
  • To evaluate the thermal stability, mechanical properties, and reprocessing capabilities of these CANs.
  • To assess the natural biodegradation behavior of the developed materials.

Main Methods:

  • Synthesis of aliphatic CANs utilizing dynamic β-CO thioester linkages.
  • Mechanical testing including tensile strength, modulus, stress relaxation, and creep resistance.
  • Thermal analysis to determine service temperature and reprocessing conditions.
  • Biodegradation studies under natural conditions to quantify mass and strength loss over time.

Main Results:

  • The developed CANs exhibit excellent recyclability and biodegradability with a service temperature exceeding 100 °C.
  • Materials show significant stress relaxation above 100 °C, creep resistance, and low hysteresis loss.
  • CANs are repeatedly reprocessable at 120 °C and depolymerizable to monomers under mild conditions.
  • Significant mechanical strength (92.4%) and weight (76.5%) loss observed within approximately 35 days of natural biodegradation.

Conclusions:

  • Aliphatic CANs based on dynamic β-CO thioester linkages offer a promising combination of high performance, reprocessability, and biodegradability.
  • These materials represent a step towards sustainable polymer networks with extended service life and environmentally benign end-of-life options.