Atomistic modelling of cellulose has widely been investigated for years using molecular dynamics simulations. In this paper, we model Iβ crystalline cellulose as well as develop a model including dislocations in between the crystal regions. The model including dislocations shows a tensile modulus of 109 GPa, 25% lower than that of the fully crystalline model (146 GPa). The change in dihedral angle preferences is analysed, and its effect on hydrogen bonding pattern is assessed. How presence of hydrogen bonds contributes to elastic properties of cellulose nano-fibrils is shown. Effect of water on the elastic modulus of fibrils is also investigated. Moreover, an illustration is given of how the tensile behaviour of fibrils is controlled by a s...
Cellulose nanocrystals (CNCs), the most abundant nanomaterials in nature, are recognized as one of t...
Cellulose nanocrystals, a potential base material for green nanocomposites, are ordered bundles of c...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...
Atomistic modelling of cellulose has widely been investigated for years using molecular dynamics sim...
We have carried out atomistic molecular dynamics simulations to study the mechanical properties of c...
We have carried out atomistic molecular dynamics simulations to study the mechanical properties of c...
Cellulose-based materials draw their good mechanical properties from the cellu-lose crystal. Improve...
The elastic modulus of cellulose I beta in the axial and transverse directions was obtained from ato...
Nature has created efficient strategies to make materials with hierarchical internal structure that ...
International audienceCellulose microfibrils are the principal structural building blocks of wood an...
International audienceCellulose microfibrils are the principal structural building blocks of wood an...
Cellulose constitutes the most abundant renewable polymeric resource available today. It considered ...
In spite of the significant potential of cellulose nanocrystals as functional nanoparticles for nume...
In the quest to develop sustainable and environmentally friendly materials, cellulose is a promising...
Cellulose nanocrystals (CNCs), the most abundant nanomaterials in nature, are recognized as one of t...
Cellulose nanocrystals (CNCs), the most abundant nanomaterials in nature, are recognized as one of t...
Cellulose nanocrystals, a potential base material for green nanocomposites, are ordered bundles of c...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...
Atomistic modelling of cellulose has widely been investigated for years using molecular dynamics sim...
We have carried out atomistic molecular dynamics simulations to study the mechanical properties of c...
We have carried out atomistic molecular dynamics simulations to study the mechanical properties of c...
Cellulose-based materials draw their good mechanical properties from the cellu-lose crystal. Improve...
The elastic modulus of cellulose I beta in the axial and transverse directions was obtained from ato...
Nature has created efficient strategies to make materials with hierarchical internal structure that ...
International audienceCellulose microfibrils are the principal structural building blocks of wood an...
International audienceCellulose microfibrils are the principal structural building blocks of wood an...
Cellulose constitutes the most abundant renewable polymeric resource available today. It considered ...
In spite of the significant potential of cellulose nanocrystals as functional nanoparticles for nume...
In the quest to develop sustainable and environmentally friendly materials, cellulose is a promising...
Cellulose nanocrystals (CNCs), the most abundant nanomaterials in nature, are recognized as one of t...
Cellulose nanocrystals (CNCs), the most abundant nanomaterials in nature, are recognized as one of t...
Cellulose nanocrystals, a potential base material for green nanocomposites, are ordered bundles of c...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...