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March 10, 2026Journal of Applied Polymer Science1 citations

Sustainable Functionalization of Natural Rubber via Click Reaction for Improved Thermal and Chemical Resistance With Biodegradability

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SRSilambarasan RaviJKJ. S. KrishnaDSDebasis Samanta

Key Points

  • The central aim is to develop a sustainable method for cross-linking natural rubber to enhance properties without toxic agents.
  • Utilized copper-catalyzed azide-alkyne cycloaddition (CuAAC) for cross-linking.
  • Conducted structural and morphological characterizations using FTIR, XPS, FESEM, EDAX, and XRD.
  • Performed thermal and swelling analyses to assess stability and resistance.
  • Successfully synthesized and cross-linked functionalized natural rubber.
  • Demonstrated improved thermal stability and solvent/oil resistance.
  • Effective as a polymer adhesion promoter for superhydrophobic leather applications.

Abstract

ABSTRACT Natural rubber (NR), a renewable biopolymer primarily composed of cis‐1,4‐polyisoprene, has several applications in the tire, footwear, and adhesive industries. Depending on application areas, cross‐linking is done to improve mechanical and chemical resistance or oil resistance properties. It also exhibits superior tensile strength and elasticity due to its high molecular weight and chain entanglement. Many cross‐linking methods like sulfur‐based cross‐linking, peroxide, and radiation cross‐linking still involve harsh conditions or toxic agents. This study explores a sulfur‐free and low‐temperature cross‐linking approach using click chemistry, particularly copper‐catalyzed azide‐alkyne cycloaddition (CuAAC), to functionalize and cross‐link functionalized NR under ambient conditions. The functionalized NR was successfully synthesized and cross‐linked using CuAAC, minimizing hazardous byproducts. Structural and morphological characterizations (FTIR, XPS, FESEM, EDAX, XRD) confirmed successful modification. Thermal and swelling analyses demonstrated enhanced stability, solvent, and oil resistance. The material also served effectively as a polymer adhesion promoter for superhydrophobic leather applications. This approach presents a sustainable route for NR modification with promising industrial potential.

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Cite This Study

Ravi et al. (2026) studied this question.

synapsesocial.com/papers/69af952b70916d39fea4c62chttps://doi.org/10.1002/app.70609
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