Steered pull simulation to determine nanomechanical properties of cellulose nanofiber

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Abstract

Cellulose nanofiber (CNF) exhibits excellent mechanical properties, which has been extensively proven through experimental techniques. However, understanding the mechanisms and the inherent structural behavior of cellulose is important in its vastly growing research areas of applications. This study focuses on taking a look into what happens to the atomic molecular interactions of CNF, mainly hydrogen bond, in the presence of external force. This paper investigates the hydrogen bond disparity within CNF structure. To achieve this, molecular dynamics simulations of cellulose Iβ nanofibers are carried out in equilibrated conditions in water using GROMACS software in conjunction with OPLS-AA force field. It is noted that the hydrogen bonds within the CNF are disrupted when a pulling force is applied. The simulated Young's modulus of CNF is found to be 161 GPa. A simulated shear within the cellulose chains presents a trend with more hydrogen bond disruptions at higher forces.

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Muthoka, R. M., Kim, H. C., Kim, J. W., Zhai, L., Panicker, P. S., & Kim, J. (2020). Steered pull simulation to determine nanomechanical properties of cellulose nanofiber. Materials, 13(3). https://doi.org/10.3390/ma13030710

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