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Cellulose Iβ microfibril interaction with pristine graphene in water: Effects of amphiphilicity by molecular simulation.

Authors :
Kong, Linghan
Alqus, Rasha
Yong, Chin W.
Todorov, Ilian
Eichhorn, Stephen J.
Bryce, Richard A.
Source :
Journal of Molecular Graphics & Modelling. Jan2023, Vol. 118, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Graphene-cellulose interactions have considerable potential in the development of new materials. In previous computational work (Biomacromolecules 2016 , 16, 1771), we predicted that the model 100 hydrophobic surface of cellulose interacted favourably with pristine graphene in aqueous solution molecular dynamics simulations; conversely, a model of the hydrophilic 010 surface of cellulose exhibited progressive rearrangement to present a more hydrophobic face with the graphene, with weakened hydrogen bonds between cellulose chains and partial permeation of water. Here, we extend this work by simulating the interaction in aqueous solution of the amphiphilic 110 surface of a cellulose Iβ microfibril model, comprising 36 chains of 40 glucosyl residues, with an infinite sheet of pristine graphene. This face of the microfibril is of intermediate hydrophilicity and progressively associates with graphene over replicate simulations. As cellulose chains adhere to the graphene surface, forming interactions via its CH and OH groups, we observe a degree of local and global untwisting of the microfibril. Complementary rippling of the graphene surface is also observed, as it adapts to interaction with the microfibril. This adsorption process is accompanied by increased exclusion of water between cellulose and graphene although some water localises between chains at the immediate interface. The predicted propensity of a cellulose microfibril to adsorb spontaneously on the graphene surface, with mutual structural accommodation, highlights the amphiphilic nature of cellulose and the types of interactions that can be harnessed to design new graphene-carbohydrate biopolymer materials. [Display omitted] • Cellulose fibril-graphene interface modelled using molecular dynamics with explicit water. • Cellulose fibril adheres to the graphene with increased CH-π and OH-π interactions. • Cellulose fibril untwists to adhere to graphene which also ripples to maximise interaction. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10933263
Volume :
118
Database :
Academic Search Index
Journal :
Journal of Molecular Graphics & Modelling
Publication Type :
Academic Journal
Accession number :
160441542
Full Text :
https://doi.org/10.1016/j.jmgm.2022.108336