Biomass recalcitrance, the resistance of cellulosic biomass to degradation, is due in part to the stability of the hydrogen bond network and stacking forces between the polysaccharide chains in cellulose microfibers. The fragment molecular orbital (FMO) method at the correlated Møller-Plesset second order perturbation level of theory was used on a model of the crystalline cellulose Iα core with a total of 144 glucose units. These computations show that the intersheet chain interactions are stronger than the intrasheet chain interactions for the crystalline structure, while they are more similar to each other for a relaxed structure. An FMO chain pair interaction energy decomposition analysis for both the crystal and relaxed structures rev...
International audienceThe contribution of hydrogen bonds and the London dispersion force in the cohe...
Enzymatic cleavage of glycocidic bonds is an important, green and biocompatible means to refine lign...
Cellulose is the most abundant organic compound in the biosphere. In nature, crystalline cellulose i...
Biomass recalcitrance, the resistance of cellulosic biomass to degradation, is due in part to the st...
AbstractA critical roadblock to the production of biofuels from lignocellulosic biomass is the effic...
Cellulosic biomass has the potential to be used as a sustainable feedstock for the production of liq...
AbstractA critical roadblock to the production of biofuels from lignocellulosic biomass is the effic...
The self-assembly process of β-D-glucose oligomers on the surface of cellulose Iβ microfibril involv...
We explore the influence of two solvents, namely water and the ionic liquid 1-ethyl-3-methylimidazol...
The contribution of hydrogen bonds and the London dispersion force in the cohesion of cellulose is d...
The energies arising from the rotation of free hydroxyl groups in the central glucose residue of a c...
Bundles of cellulose polymers in plant cell walls exhibit a robust network of hydrogen bonds and hyd...
Single-point energies resulting from the rotations of free -OH groups in the central residue of a ce...
Cellulose is the most familiar and most abundant strong biopolymer, but the reasons for its outstand...
A combination of vibrational spectroscopy conducted under molecular beam conditions and quantum chem...
International audienceThe contribution of hydrogen bonds and the London dispersion force in the cohe...
Enzymatic cleavage of glycocidic bonds is an important, green and biocompatible means to refine lign...
Cellulose is the most abundant organic compound in the biosphere. In nature, crystalline cellulose i...
Biomass recalcitrance, the resistance of cellulosic biomass to degradation, is due in part to the st...
AbstractA critical roadblock to the production of biofuels from lignocellulosic biomass is the effic...
Cellulosic biomass has the potential to be used as a sustainable feedstock for the production of liq...
AbstractA critical roadblock to the production of biofuels from lignocellulosic biomass is the effic...
The self-assembly process of β-D-glucose oligomers on the surface of cellulose Iβ microfibril involv...
We explore the influence of two solvents, namely water and the ionic liquid 1-ethyl-3-methylimidazol...
The contribution of hydrogen bonds and the London dispersion force in the cohesion of cellulose is d...
The energies arising from the rotation of free hydroxyl groups in the central glucose residue of a c...
Bundles of cellulose polymers in plant cell walls exhibit a robust network of hydrogen bonds and hyd...
Single-point energies resulting from the rotations of free -OH groups in the central residue of a ce...
Cellulose is the most familiar and most abundant strong biopolymer, but the reasons for its outstand...
A combination of vibrational spectroscopy conducted under molecular beam conditions and quantum chem...
International audienceThe contribution of hydrogen bonds and the London dispersion force in the cohe...
Enzymatic cleavage of glycocidic bonds is an important, green and biocompatible means to refine lign...
Cellulose is the most abundant organic compound in the biosphere. In nature, crystalline cellulose i...