Cellulose Iβ Behaviors in Non-solvent Liquid Media: Molecular Dynamic Simulations

Authors

  • Yi Kong State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, PR China
  • Shiyu Fu State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, PR China; South China University of Technology-Zhuhai Institute of Modern Industrial Innovation, Zhuhai 519175, PR China
  • Xuedi Yang South China University of Technology-Zhuhai Institute of Modern Industrial Innovation, Zhuhai 519175, PR China
  • Shao-Yuan Leu Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Hong Kong SAR 999077, PR China
  • Chuanshuang Hu College of Materials and Energy, South China Agricultural University, Guangzhou 510640, PR China

Keywords:

Cellulose, Liquid polarity, Molecular dynamics, Structural transformation

Abstract

The structural changes of cellulose in non-solvent liquid media can provide insights into the high-value utilization of cellulose. This study includes molecular dynamics simulations of 36-chain cellulose Iβ microfibril model (Iβ-MF) behavior in 16 non-solvent liquids with different polarities at room temperature using two carbohydrate force fields (CHARMM36, GLYCAM06). Iβ-MF in CHARMM36 retains more than 70% of the tg conformation in 16 liquids, and the retention of the tg conformation increased with decreasing liquid polarity. Liquid polarity can affect the hydroxymethyl conformation of cellulose, which is only an appearance, and the real driving force behind is the electrostatic interaction between liquid molecules and cellulose. Furthermore, changing the 1,4 electrostatic scaling factor of GLYCAM06 can effectively affect the structural convergence of Iβ-MF. The Iβ-MF forms an alternating layer structure in the gg/gt conformation in a medium to high polarity non-solvent liquid, while the model undergoes untwisting. Model untwisting is inextricably linked to the degree of alternate layer structure formation. This paper provides a theoretical basis for the molecular study of nanocellulose structures from an energy-structure-property perspective.

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Published

2023-10-19

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Section

Research Article or Brief Communication