A comparative molecular dynamics study of crystalline, paracrystalline and amorphous states of cellulose
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Dominique Derome | Sinan Keten | Sergey V. Churakov | Jan Carmeliet | J. Carmeliet | S. Keten | D. Derome | S. Churakov | Karol Kulasinski | K. Kulasinski
[1] J. Putaux,et al. Diversity of potential hydrogen bonds in cellulose I revealed by molecular dynamics simulation , 2014, Cellulose.
[2] P. Saranpää,et al. Crystallinity of wood and the size of cellulose crystallites in Norway spruce (Picea abies) , 2003, Journal of Wood Science.
[3] D. Harper,et al. Effects of process and source on elastic modulus of single cellulose fibrils evaluated by atomic force microscopy , 2009 .
[4] M. Himmel,et al. Simulation studies of the insolubility of cellulose. , 2010, Carbohydrate research.
[5] J. Sugiyama,et al. Allomorphs of native crystalline cellulose I evaluated by two equatoriald-spacings , 2001, Journal of Wood Science.
[6] H. Berendsen,et al. Molecular dynamics with coupling to an external bath , 1984 .
[7] J. Sugiyama,et al. Electron diffraction study on the two crystalline phases occurring in native cellulose from an algal cell wall , 1991 .
[8] M. Himmel,et al. Comparison of Cellulose Iβ Simulations with Three Carbohydrate Force Fields. , 2012, Journal of chemical theory and computation.
[9] K. Mazeau,et al. Molecular modeling of the structural and dynamical properties of secondary plant cell walls: influence of lignin chemistry. , 2012, The journal of physical chemistry. B.
[10] M. Himmel,et al. Computer simulation studies of microcrystalline cellulose Iβ , 2006 .
[11] Carsten Kutzner,et al. GROMACS 4: Algorithms for Highly Efficient, Load-Balanced, and Scalable Molecular Simulation. , 2008, Journal of chemical theory and computation.
[12] Mengzhao Zhu,et al. MOLECULAR DYNAMICS STUDY OF THE DISRUPTION OF H-BONDS BY WATER MOLECULES AND ITS DIFFUSION BEHAVIOR IN AMORPHOUS CELLULOSE , 2012 .
[13] P. Zavattieri,et al. Anisotropy of the elastic properties of crystalline cellulose Iβ from first principles density functional theory with Van der Waals interactions , 2013, Cellulose.
[14] P. Langan,et al. A REVISED STRUCTURE AND HYDROGEN-BONDING SYSTEM IN CELLULOSE II FROM A NEUTRON FIBER DIFFRACTION ANALYSIS , 1999 .
[15] U. Agarwal,et al. Raman imaging to investigate ultrastructure and composition of plant cell walls: distribution of lignin and cellulose in black spruce wood (Picea mariana) , 2006, Planta.
[16] Paul Langan,et al. Crystal structure and hydrogen-bonding system in cellulose Ibeta from synchrotron X-ray and neutron fiber diffraction. , 2002, Journal of the American Chemical Society.
[17] Chris Oostenbrink,et al. A biomolecular force field based on the free enthalpy of hydration and solvation: The GROMOS force‐field parameter sets 53A5 and 53A6 , 2004, J. Comput. Chem..
[18] Ashlie Martini,et al. Cellulose nanomaterials review: structure, properties and nanocomposites. , 2011, Chemical Society reviews.
[19] J. Sugiyama,et al. Combined infrared and electron diffraction study of the polymorphism of native celluloses , 1991 .
[20] Wei Chen,et al. Molecular modeling of cellulose in amorphous state. Part I: model building and plastic deformation study , 2004 .
[21] Charles Q. Yang,et al. Molecular modeling of cellulose in amorphous state part II: effects of rigid and flexible crosslinks on cellulose , 2004 .
[22] L. Heux,et al. Molecular Dynamics Simulations of Bulk Native Crystalline and Amorphous Structures of Cellulose , 2003 .
[23] Matthias Rief,et al. Single Molecule Force Spectroscopy on Polysaccharides by Atomic Force Microscopy , 1997, Science.
[24] Roberto D. Lins,et al. A new GROMOS force field for hexopyranose‐based carbohydrates , 2005, J. Comput. Chem..
[25] Yoshiharu Nishiyama,et al. Structure and properties of the cellulose microfibril , 2009, Journal of Wood Science.
[26] D. Cremer,et al. General definition of ring puckering coordinates , 1975 .
[27] Kentaro Abe,et al. Review: current international research into cellulose nanofibres and nanocomposites , 2010, Journal of Materials Science.
[28] Masamichi Kobayashi,et al. THEORETICAL EVALUATION OF THREE-DIMENSIONAL ELASTIC CONSTANTS OF NATIVE AND REGENERATED CELLULOSES : ROLE OF HYDROGEN BONDS , 1991 .
[29] L. Berglund,et al. Dynamics of cellulose-water interfaces: NMR spin-lattice relaxation times calculated from atomistic computer simulations. , 2008, The journal of physical chemistry. B.
[30] H. Grubmüller,et al. Elastic properties of poly(ethylene-glycol) studied by molecular dynamics stretching simulations , 1999 .
[31] Wei Chen,et al. Molecular modeling of cellulose in amorphous state. III. An innovative elastomeric crosslink system , 2007 .
[32] Fred Hall,et al. Building Research Establishment , 2015 .
[33] L. Berglund,et al. Thermal response in crystalline Ibeta cellulose: a molecular dynamics study. , 2007, The journal of physical chemistry. B.
[34] S. Eichhorn,et al. Effective Young's modulus of bacterial and microfibrillated cellulose fibrils in fibrous networks. , 2012, Biomacromolecules.
[35] M. Burghammer,et al. Combined X-ray microbeam small-angle scattering and fibre diffraction experiments on single native cellulose fibres , 2000 .
[36] Junji Sugiyama,et al. Crystal structure and hydrogen bonding system in cellulose I(alpha) from synchrotron X-ray and neutron fiber diffraction. , 2003, Journal of the American Chemical Society.
[37] M. Parrinello,et al. Canonical sampling through velocity rescaling. , 2007, The Journal of chemical physics.
[38] Kaoru Tsujii,et al. Crystalline-to-amorphous transformation of cellulose in hot and compressed water and its implications for hydrothermal conversion , 2008 .
[39] H. Ågren,et al. A molecular dynamics study of the thermal response of crystalline cellulose Iβ , 2011 .
[40] R. Serimaa,et al. The structure of amorphous cellulose as revealed by wide-angle X-ray scattering , 1987 .
[41] B. J. Hardy,et al. Molecular dynamics simulations and diffraction-based analysis of the native cellulose fibre: structural modelling of the I-α and I-β phases and their interconversion , 1996 .
[42] M. Wada,et al. The Thermal Expansion of Wood Cellulose Crystals , 2005 .
[44] P. Langan,et al. Cellulose IIII Crystal Structure and Hydrogen Bonding by Synchrotron X-ray and Neutron Fiber Diffraction , 2004 .
[45] K. Mazeau,et al. Torsional Entropy at the Origin of the Reversible Temperature-Induced Phase Transition of Cellulose , 2012 .
[46] S. Eichhorn. Stiff as a Board: Perspectives on the Crystalline Modulus of Cellulose. , 2012, ACS macro letters.
[47] Dominique Derome,et al. Hygromorphic behaviour of cellular material: hysteretic swelling and shrinkage of wood probed by phase contrast X-ray tomography , 2012 .
[48] Robert Sinko,et al. Dimensions of Biological Cellulose Nanocrystals Maximize Fracture Strength. , 2014, ACS macro letters.
[49] L. Berglund,et al. Deformation of cellulose nanocrystals: entropy, internal energy and temperature dependence , 2012, Cellulose.
[50] Kaoru Tsujii,et al. Cooking cellulose in hot and compressed water. , 2006, Chemical communications.
[51] Munir S. Skaf,et al. Cellulose‐Builder: A toolkit for building crystalline structures of cellulose , 2012, J. Comput. Chem..
[52] Stephen J. Eichhorn,et al. The Young's modulus of a microcrystalline cellulose , 2001 .
[53] R. Woods,et al. Effect of microfibril twisting on theoretical powder diffraction patterns of cellulose Iβ , 2014, Cellulose.
[54] Peter J. Reilly,et al. Modeling of aldopyranosyl ring puckering with MM3 (92) , 1994 .
[55] A. L. Zel'manov. The Deformation of , 1961 .