\u3cp\u3eA lattice model based on polymer self-consistent field theory is developed to predict the equilibrium statistics of arbitrary polymer networks. For a given network topology, our approach uses moment propagators on a lattice to self-consistently construct the ensemble of polymer conformations and cross-link spatial probability distributions. Remarkably, the calculation can be performed in the dark , without any prior knowledge on preferred chain conformations or cross-link positions. Numerical results from the model for a test network exhibit close agreement with molecular dynamics simulations, including when the network is strongly sheared. Our model captures nonaffine deformation, mean-field monomer interactions, cross-link fluct...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
The structure and material properties of polymer networks can depend sensitively on changes in the e...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Cross-linked polymer networks are stress supporting structures that represent an important class of ...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
A lattice model based on polymer self-consistent field theory is developed to predict the equilibriu...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
The structure and material properties of polymer networks can depend sensitively on changes in the e...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Reversible crosslinking is a design paradigm for polymeric materials, wherein they are microscopical...
Cross-linked polymer networks are stress supporting structures that represent an important class of ...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...
We present a method to generate realistic, three-dimensional networks of crosslinked semiflexible po...