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April 16, 2026Polymer Composites0 citations

Green Carbon and Hexagonal Boron Nitride Heterostructure Reinforced Epoxy Composite With Improved Thermomechanical Properties and Anticorrosive Performance

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RBRupam BandyopadhyaySGSaswata GoswamiHSHimanshu Singh

Key Points

  • This research aims to enhance the performance of epoxy coatings by integrating green carbon and hexagonal boron nitride heterostructures.
  • Mechanical characterization of the epoxy composite with integrated materials
  • Thermal transport analysis using infrared thermography
  • Electrochemical studies to assess corrosion resistance
  • Ultimate tensile strength increased by ~98%
  • Fracture strain improved by ~65%
  • Reduced modulus enhanced by ~60%
  • Corrosion rate decreased by ~92% in the composite coating
  • Increased impedance modulus by ~9-fold

Abstract

ABSTRACT Protective epoxy (EP) coatings are widely used to prolong the service life of engineering materials in harsh conditions; however, their performance is often restricted by low thermal conductivity, inadequate mechanical strength, and poor long‐term corrosion resistance. To address these constraints, this study investigates integrating green carbon (GC) and hexagonal boron nitride (h‐BN) heterostructures into the EP matrix to develop multifunctional coatings. Mechanical characterization revealed significant improvements over EP, including ~98% higher ultimate tensile strength (UTS), ~65% more fracture strain, and ~60% higher reduced modulus ( E r ). Thermal transport analysis using infrared thermography revealed lower temperature gradients along the specimen height, indicating improved heat conduction within the heterostructure composite. Electrochemical studies further demonstrated that the optimized heterostructure composite coating on carbon steel (CS) resulted in a ~9‐fold increase in impedance modulus and a ~92% reduction in corrosion rate (CR) compared to EP‐coated CS. These benefits are attributed to uniform filler dispersion, increased interfacial interactions that enable effective stress transfer and cross‐linking within the EP matrix, the formation of thermally conductive pathways, and improved barrier protection against corrosive ions. These findings emphasize GC and h‐BN heterostructures as effective reinforcements for EP coatings, improving mechanical, thermal, and anticorrosion properties.

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Cite This Study

Bandyopadhyay et al. (2026) studied this question.

synapsesocial.com/papers/69e07e3b2f7e8953b7cbf343https://doi.org/10.1002/pc.71095
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