August 2026

Journal

Harnessing biomass-derived reinforcements for sustainable flame-resistant composite

By:
Joshy, Joslin M; Clarkson, Caitlyn M; Niroula, Saunak ; Copenhaver, Katherine E; Slavny, Kathryn E; Hubbard, Amber M; Vaidya, Uday K; Tekinalp, Halil L; Ozcan, Soydan ; Marathe, Umesh N
Journal Name:
Materials Today Communications
Page Number:
115776
Volume:
54
Publication Date:
August 7, 2026
View DOI Listing:
https://doi.org/10.1016/j.mtcomm.2026.115776

Abstract

Bio-based composites containing natural fiber reinforcements have been integral to developing innovative, low-cost, and low-energy technologies for transportation applications in marine, automotive, and other industries. The low density of natural fibers gives these materials a high specific stiffness and strength, which can lead to significant weight savings in composites. This study focused on a specialty type of wood fiber treated with boric acid (≤ 7%) sourced from Northern White Pine in the USA, marketed as TimberFill. TimberFill is a high aspect ratio, fibrillated wood fiber that is produced commercially for wood fiber insulation; it is chemically treated to improve both its flame retardance and water resistance. In the present study, TimberFill was processed into non-woven mats using a process akin to papermaking and then infiltrated with epoxy resin. Biochar from wood waste was also incorporated into the epoxy resin as a low-cost filler and functional additive. The effects of biochar concentration on composites’ flame retardance (17% improvement in burn rate), thermal conductivity (improved by 9%), and mechanical performance (33% improvement in modulus) are herein presented. Additionally, it explores the plasticizing effect of the boric acid used in the treatment of TimberFill on the thermal and mechanical properties of the resulting composites, specifically on the thermal expansion coefficient.