Antibacterial and dynamical behaviour of silicon nanoparticles influenced sustainable waste flax fibre-reinforced epoxy composite for biomedical application

Author:

Natrayan L.1,Ameen Fuad2,Chinta Neelima Devi3,Teja Nalla Bhanu4,Muthu G.5,Kaliappan S.6,Ali Saheb7,Vadiveloo Ashiwin8

Affiliation:

1. Department of Mechanical Engineering, Saveetha School of Engineering, SIMATS , Chennai 602105, Tamil Nadu , India

2. Department of Botany and Microbiology, College of Science, King Saud University , Riyadh , 11451 , Saudi Arabia

3. Department of Mechanical Engineering, JNTU-GV College of Engineering Vizianagaram (JNTUGV-CEV) , Vizianagaram-535003 , Andhra Pradesh , India

4. Department of Mechanical Engineering, Aditya College of Engineering , Surampalem , Andhra Pradesh-533437 , India

5. Department of Mechanical Engineering, Rajalakshmi Institute of Technology, Kuthampakkam , Chennai 600124, Tamil Nadu , India

6. Department of Mechatronics Engineering, KCG College of Technology , KCG Nagar, Karapakkam , Chennai - 600097, Tamil Nadu , India

7. Department of Periodontics, Saveetha Dental College and Hospital, SIMATS , Chennai 600077, Tamilnadu , India

8. Algae R&D Centre, Murdoch University , Murdoch , WA 6150 , Australia

Abstract

Abstract This article explores the impact of nano-silica on the properties of woven flax fibre/epoxy composites. Using compression moulding, epoxy/flax/silica hybrid nanocomposites were produced. The nano-silica was dispersed in the epoxy matrix via ultrasonication at various weight ratios. A series of tests, including crack durability, dynamic mechanical analysis, and scanning electron microscopy, were conducted to evaluate the modified materials. Notably, a 3% nano-silica filler load resulted in a 54% and 57% improvement in initiation and transmission interfacial fracture toughness, respectively. Scanning electron microscope imaging confirmed that fibres pull out at the crack tip during initial debonding, accounting for the increased toughness. Dynamic mechanical analysis further revealed enhancements in mechanical properties. Moreover, the 3% nano-silica content led to less fibre pull-out, suggesting higher heat resistance than standard flax/epoxy composites. The material also demonstrated promising antimicrobial efficacy against gram-positive and gram-negative bacteria, offering a potential alternative to conventional antibiotics.

Publisher

Walter de Gruyter GmbH

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