We have modeled the transformation of cellulose Iβ to a high temperature (550 K) structure, which is considered to be the first step in cellulose pyrolysis. We have performed molecular dynamics simulations at constant pressure using the GROMOS 45a4 united atom forcefield. To test the forcefield, we computed the density, thermal expansion coefficient, total dipole moment, and dielectric constant of cellulose Iβ, finding broad agreement with experimental results. We computed infrared (IR) spectra of cellulose Iβ over the range 300–550 K as a probe of hydrogen bonding. Computed IR spectra were found to agree semi-quantitatively with experiment, especially in the O–H stretching region. We assigned O–H stretches using a novel synthesis of normal...
The present thesis honors contemporary molecular dynamics simulation methodologies which provide pow...
This paper aims at a better understanding of the interaction between cellulose and moisture. In part...
The purpose of this study was to learn how cellulose pyrolysis was affected by changes in atmosphere...
Natural plants, such as cotton and linen, are rich in cellulose Iβ. The properties of cellulose Iβ u...
The kinetics and products of cellulose pyrolysis can be studied using large-scale molecular dynamics...
Highly crystalline oriented Halocynthia roretzi cellulose Iβ films were investigated by IR-spectrosc...
This study reveals the evolution of functional groups during slow pyrolysis of crystalline and amorp...
Hydrogen bonds play critical roles in noncovalent directional interactions determining the crystal s...
Cellulose is the most abundant biopolymer which is a topic of extensive research work. In this study...
Dissolution of cellulose is an important but complicated step in biofuel production fromlignocellulo...
Cellulose is one of the most abundant compounds found in nature. However, the environmental conditio...
Cellulose constitutes the most abundant renewable polymeric resource available today. It considered ...
Much of the current interest in cellulose pyrolysis stems from technologies that enable the conversi...
Funding Information: We are grateful for the support by the FinnCERES Materials Bioeconomy Ecosystem...
Molecular simulations that model cellulose microfibrils at high temperature indicate regions that ma...
The present thesis honors contemporary molecular dynamics simulation methodologies which provide pow...
This paper aims at a better understanding of the interaction between cellulose and moisture. In part...
The purpose of this study was to learn how cellulose pyrolysis was affected by changes in atmosphere...
Natural plants, such as cotton and linen, are rich in cellulose Iβ. The properties of cellulose Iβ u...
The kinetics and products of cellulose pyrolysis can be studied using large-scale molecular dynamics...
Highly crystalline oriented Halocynthia roretzi cellulose Iβ films were investigated by IR-spectrosc...
This study reveals the evolution of functional groups during slow pyrolysis of crystalline and amorp...
Hydrogen bonds play critical roles in noncovalent directional interactions determining the crystal s...
Cellulose is the most abundant biopolymer which is a topic of extensive research work. In this study...
Dissolution of cellulose is an important but complicated step in biofuel production fromlignocellulo...
Cellulose is one of the most abundant compounds found in nature. However, the environmental conditio...
Cellulose constitutes the most abundant renewable polymeric resource available today. It considered ...
Much of the current interest in cellulose pyrolysis stems from technologies that enable the conversi...
Funding Information: We are grateful for the support by the FinnCERES Materials Bioeconomy Ecosystem...
Molecular simulations that model cellulose microfibrils at high temperature indicate regions that ma...
The present thesis honors contemporary molecular dynamics simulation methodologies which provide pow...
This paper aims at a better understanding of the interaction between cellulose and moisture. In part...
The purpose of this study was to learn how cellulose pyrolysis was affected by changes in atmosphere...