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Properties and Potential of Green Natural Rubber Composites Filled with Biofillers from Cassia bakeriana Craib and Cassia fistula L. Pods
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Metadata
Document Title
Properties and Potential of Green Natural Rubber Composites Filled with Biofillers from Cassia bakeriana Craib and Cassia fistula L. Pods
Author
Yodpanya S.
Name from Authors Collection
Affiliations
Department of Chemistry, Faculty of Science, Khon Kaen University, Khon Kaen, 4002, Thailand; Rubber Technology Research Centre, Faculty of Science, Mahidol University, Nakhon Pathom, 73170, Thailand; MTEC, National Science and Technology Development Agency (NSTDA), 114 Thailand Science Park, Phahonyothin Road Khlong Nueng, Khlong Luang, Pathum Thani, 12120, Thailand; Department of Biotechnology, Faculty of Technology, Khon Kaen University, Khon Kaen, 40002, Thailand; Materials Chemistry Research Center, Department of Chemistry and Center of Excellence for Innovation in Chemistry (PERCH-CIC), Faculty of Science, Khon Kaen University, Khon Kaen, 40002, Thailand
Type
Article
Source Title
ACS Omega
ISSN
24701343
Year
2025
Volume
10
Issue
20
Page
20875-20885
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
American Chemical Society
DOI
10.1021/acsomega.5c02283
Abstract
This study investigates Cassia bakeriana (PS) and Cassia fistula (GS) pod powders as sustainable biofillers for natural rubber (NR), aiming to offer eco-friendly alternatives to conventional fillers. The powders were characterized and incorporated into NR to evaluate their effects on bound rubber content, cure behavior, cross-link density, and mechanical and dynamic properties. Both fillers were rich in organic components; cellulose, hemicellulose, lignin, proteins, and fatty acids with minor calcium oxalate and surface hydroxyl groups that promoted rubber-filler interaction. Nitrogen-containing compounds in the powders contributed to cure acceleration. GS powder outperformed PS in terms of scorch and cure times, hardness, modulus, and reinforcement, indicating more effective filler-rubber interaction. However, both fillers exhibited lower reinforcing efficiency than carbon black (CB), mainly due to their larger particle sizes. Tensile strength peaked at 20 phr for PS (20 MPa), about 11 and 22% lower than GS and CB, respectively. GS-filled composites also showed higher storage modulus and lower tan δ, suggesting greater stiffness and reduced energy loss. These results confirm that PS and GS powders can function as renewable, partially reinforcing fillers in NR, with GS offering superior mechanical and dynamic performance. Their use also shortens cure time and supports sustainable waste utilization. Given their moderate reinforcement and environmental benefits, PS and GS powders are suitable for noncritical rubber products such as shoe soles, mats, gaskets, and general-purpose molded goods, where cost efficiency and sustainability are prioritized over high-performance requirements. © 2025 The Authors. Published by American Chemical Society.
License
CC BY-NC-ND
Rights
Authors
Publication Source
Scopus