4.8 Article

Wholly Biobased, Highly Stretchable, Hydrophobic, and Self-healing Thermoplastic Elastomer

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 5, Pages 6720-6730

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c23155

Keywords

self-healing elastomers; biobased polyamides; hydrophobicity; anticorrosion coatings; sensors; fibers

Funding

  1. Indonesia Endowment Fund for Education (LPDP)
  2. Malaysian Government
  3. University College London

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The wholly biobased, self-healing polyamide-based thermoplastic elastomer synthesized using a fatty dimer acid and a fatty dimer amine exhibits superior stretchability, high toughness, and excellent shape recovery. Its outstanding properties are attributed to the highly entangled main chain, multiple dangling chains, reversible physical bonds, intermolecular diffusion, and low ratio of amide to methylene group within the elastomer.
Renewable polymers with excellent stretchability and self-healing ability are interesting for a wide range of applications. A novel type of wholly biobased, self-healing, polyamide-based thermoplastic elastomer was synthesized using a fatty dimer acid and a fatty dimer amine, both containing multiple alkyl chains, through facile one-pot condensation polymerization under different polymerization times. The resulting elastomer shows superior stretchability (up to 2286%), high toughness, and excellent shape recovery after being stretched to different strains. This elastomer also displays high room-temperature autonomous self-healing efficiency after fracture and zero water uptake during water immersion. The highly entangled main chain, the multiple dangling chains, the abundant reversible physical bonds, the intermolecular diffusion, and the low ratio of amide to methylene group within the elastomer are responsible for these extraordinary properties. The polymerization time influences the properties of the elastomer. The use of the optimal self-healing thermoplastic elastomer in anticorrosion coating, piezoresistive sensing, and highly stretchable fibers is also demonstrated. The elastomer coating prevents stainless-steel products from corrosion in a salty environment due to its superhydrophobicity. The elastomer serves as a robust flexible substrate for creating self-healing piezoresistive sensors with excellent repeatability and self-healing efficiency. The elastomer fiber yarn can be stretched to 950% of its original length confirming its outstanding stretchability.

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