4.7 Article

Fabrication of Silane-Grafted Cellulose Nanocrystals and Their Effects on the Structural, Thermal, Mechanical, and Hysteretic Behavior of Thermoplastic Polyurethane

Journal

Publisher

MDPI
DOI: 10.3390/ijms24055036

Keywords

cellulose nanocrystal; thermoplastic polyurethane; surface modification; drawing; mechanical property

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The reinforcement of polymer nanocomposites can be achieved by selecting the appropriate fabrication method, surface modification, and filler orientation. In this study, thermoplastic polyurethane (TPU) composite films with excellent mechanical properties were prepared using nonsolvent-induced phase separation method with ternary solvents and 3-Glycidyloxypropyltrimethoxysilane-modified cellulose nanocrystals (GLCNCs). The incorporation of GLCNCs in TPU improved its tensile strain, toughness, and elastic recovery rate. Alignment of CNCs in the composites further enhanced their mechanical properties. This study presents a facile and effective strategy for fabricating mechanically enhanced TPU composites.
Reinforcement of polymer nanocomposites can be achieved by the selection of the appropriate fabrication method, surface modification, and orientation of the filler. Herein, we present a nonsolvent-induced phase separation method with ternary solvents to prepare thermoplastic polyurethane (TPU) composite films with excellent mechanical properties using 3-Glycidyloxypropyltrimethoxysilane-modified cellulose nanocrystals (GLCNCs). ATR-IR and SEM analyses of the GLCNCs confirmed that GL was successfully coated on the surface of the nanocrystals. The incorporation of GLCNCs in TPU resulted in the enhancement of the tensile strain and toughness of pure TPU owing to the enhanced interfacial interactions between them. The GLCNC-TPU composite film had tensile strain and toughness values of 1740.42% and 90.01 MJ/m(3), respectively. Additionally, GLCNC-TPU exhibited a good elastic recovery rate. CNCs were readily aligned along the fiber axis after the spinning and drawing of the composites into fibers, which further improved the mechanical properties of the composites. The stress, strain, and toughness of the GLCNC-TPU composite fiber increased by 72.60%, 10.25%, and 103.61%, respectively, compared to those of the pure TPU film. This study demonstrates a facile and effective strategy for fabricating mechanically enhanced TPU composites.

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