In Situ Silanization of Ligno-Cellulosic Microfibers Derived from Industrial Waste to Enhance Mechanical Properties of Natural Rubber Compounds

Castaño-Rivera, P; Soto-Arriagada, A.; Troncoso Ortega; Galvez-Garrido, Karen; Cabrera Barjas,Gustavo; Aguilar-Bolados; Castano-Agudelo, Johanna; Pereira Soto, Miguel Ángel

Keywords: industrial waste, Natural rubber, ligno-cellulosic microfibers, in situ silanization

Abstract

Nowadays, the use of materials from renewable resources, such as agricultural waste and forest residues, has increased. In this work, industrial waste recovered from a recycled paper/cardboard company was mechanically refined to obtain ligno-cellulosic microfibers (LCMFs). The obtained LCMFs were well characterized and chemically modified in situ together with natural rubber through silanization. The effect of in situ silanizated LCMFs, by using (3-triethoxysilylpropyl) tetrasulfide (Si69) as a silane coupling agent, on natural rubber (NR) compound properties was studied. The NR compound with silanizated LCMFs at 2.5 phr of Si69 (NR MF Si2) increased NR stiffness significantly. For example, the 300% modulus of NR MF Si2 was around 9 units higher than that of NR. The physical–mechanical properties, crosslink density, curing behavior, infrared spectroscopy, and microscopy of the compounds were studied to confirm the in situ silanization of the microfibers and its reinforcement effect on the NR matrix. The storage modulus (E?) obtained from Dynamic Mechanical Analysis suggested that the silanizated samples presented an uneven crosslinking, but it was enough to stiffen the NR chains. © 2025 by the authors.

Más información

Título según WOS: In Situ Silanization of Ligno-Cellulosic Microfibers Derived from Industrial Waste to Enhance Mechanical Properties of Natural Rubber Compounds
Título según SCOPUS: In Situ Silanization of Ligno-Cellulosic Microfibers Derived from Industrial Waste to Enhance Mechanical Properties of Natural Rubber Compounds
Título de la Revista: Polysaccharides
Volumen: 6
Número: 3
Editorial: Multidisciplinary Digital Publishing Institute (MDPI)
Fecha de publicación: 2025
Idioma: English
URL: https://www.mdpi.com/2673-4176/6/3/70
DOI:

10.3390/polysaccharides6030070

Notas: ISI, SCOPUS