Journal of Composites Science· 2026Q1
Effect of Nano-Silica on the Mechanical, Thermal and Microstructural Properties of Areca–Hemp Epoxy Hybrid Composites
- 0citations
- Q1SCImago
- 2026year
Short summary
Adding 2 wt% nano-silica to areca-hemp epoxy composites (AHNS-2) improved flexural and compression strength by up to 64.40 N/mm2 and 57.46 N/mm2 respectively, while 4 wt% (AHNS-4) enhanced tensile strength to 61.90 N/mm2 and toughness to 81.99 J/m.
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Key points
- AHNS-2 (2 wt% nano-silica) achieved superior flexural strength (64.40 N/mm2), compression strength (57.46 N/mm2), and Shore-D hardness (83).
- AHNS-4 (4 wt% nano-silica) exhibited the best tensile strength (61.90 N/mm2), toughness (81.99 J/m), and maximum degradation temperature (377.4 °C).
- SEM analysis revealed that nano-silica integration improved fiber-matrix interfacial characteristics, impacting density, hardness, strength, and toughness.
- All tested percentages of nano-silica (1-4 wt%) significantly improved mechanical properties compared to the unfilled composite.
AI-generated from the title and abstract; the full text is not read.
Abstract
Natural-fiber-based composite materials are gaining popularity because they are lightweight, renewable, and more sustainable than existing synthetic fiber composites, offering numerous benefits for structural engineering applications. However, the lack of adhesion at natural-fiber–matrix interfaces due to the non-polar hydrophobic nature of the fibers and hydrophobic epoxy matrices produces gaps due to void formation during manufacturing. Also, the non-uniform distribution of natural fibers and the reinforcement make the composite perform inefficiently, prone to brittleness, have lower temperature resistance and lack proper bonding between fibers. The present research work aimed to achieve the maximum flexural, tensile, compressive strength, thermal resistance and toughness of areca–hemp hybrid epoxy composites with nano-silica (AHNS) at varying percentages (1 wt%, 2 wt%, 3 wt%, and 4 wt%) as reinforcement. The results showed that AHNS-2 with 2 wt% of nano-silica yielded superior flexural and compression strength and Shore-D hardness (64.40 N/mm2, 57.46 N/mm2 and 83, respectively); AHNS-4 with 4 wt% nano-silica exhibited the best performance in terms of tensile strength, toughness and maximum degradation-rate temperature (61.90 N/mm2, 81.99 J/m and 377.4 °C, respectively). The SEM morphology analysis revealed fiber pull-out, matrix cracks, fiber breakage, and fiber–matrix interfacial characteristics. These microstructural features showed a considerable impact on the mechanical properties of the composites, especially on density, hardness, strength and toughness. The elemental analysis revealed that carbon (64.92%) and oxygen (33.08%) were the predominant elements present, although silicon (2%) was also present in AHNS-2. The presence of silicon provided evidence of the localized incorporation of nano-silica within the epoxy matrix. It was observed that the mechanical properties of AHNS with 1–4 wt% nano-silica were significantly better compared to the unfilled composite (AHNS-0 wt% nano-silica).
The authors' abstract, as published at the source. Journal of Composites Science, 2026 · DOI ↗
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Field: Polymers and Plastics
Polymers and PlasticsMaterials Science