We introduce a coarse-grained approach for characterizing the long-timescale dynamics of ion diffusion in general polymer electrolytes using input from short molecular dynamics trajectories. The approach includes aspects of the dynamic bond percolation model [J. Chem. Phys. 1983, 79, 3133−3142] by treating ion diffusion in terms of hopping transitions on a fluctuating lattice. We extend this well-known approach by using short (i.e., 10 ns) molecular dynamics (MD) trajectories to predict the distribution of ion solvation sites that comprise the lattice and to predict the rate of hopping among the lattice sites. This yields a chemically specific dynamic bond percolation (CS-DBP) model that enables the description of long-timescale ion diffusi...
We herein report an all-atom molecular dynamics study on the role of solvent polarity for Li+ diffus...
Monte Carlo simulations are used to study ion and polymer chain dynamic properties in a simplified l...
Nonaqueous polyelectrolyte solutions have been recently proposed as high Li+ transference number ele...
We introduce a coarse-grained approach for characterizing the long-timescale dynamics of ion diffusi...
We introduce a coarse-grained approach for characterizing the long-timescale dynamics of ion diffusi...
Polymer electrolytes have significant promise for many lithium-ion battery applications because they...
We employ atomistic mol. dynamics (MD), in tandem with exptl. studies, to elucidate the mechanisms o...
Solid polymer electrolytes have been the subject of considerable fundamental and applied chem. resea...
Solid polymeric electrolytes have the potential to greatly improve battery efficiency and stability,...
A semi-microscopic description of ionic transport in polyethylene oxide (PEO)-type electrolytes is p...
We investigate how ion–polymer complexation suppresses molecular motion in conventional polymer elec...
Understanding the ionic diffusion mechanism in polymer electrolytes is critical to the development o...
Atomistic analysis of the ion transport in polymer electrolytes for all-solid-state Li-ion batteries...
While ion transport in solid polymer electrolytes (SPEs) has been explored for decades, there still ...
Understanding the ionic diffusion mechanism in polymer electrolytes is critical to the development o...
We herein report an all-atom molecular dynamics study on the role of solvent polarity for Li+ diffus...
Monte Carlo simulations are used to study ion and polymer chain dynamic properties in a simplified l...
Nonaqueous polyelectrolyte solutions have been recently proposed as high Li+ transference number ele...
We introduce a coarse-grained approach for characterizing the long-timescale dynamics of ion diffusi...
We introduce a coarse-grained approach for characterizing the long-timescale dynamics of ion diffusi...
Polymer electrolytes have significant promise for many lithium-ion battery applications because they...
We employ atomistic mol. dynamics (MD), in tandem with exptl. studies, to elucidate the mechanisms o...
Solid polymer electrolytes have been the subject of considerable fundamental and applied chem. resea...
Solid polymeric electrolytes have the potential to greatly improve battery efficiency and stability,...
A semi-microscopic description of ionic transport in polyethylene oxide (PEO)-type electrolytes is p...
We investigate how ion–polymer complexation suppresses molecular motion in conventional polymer elec...
Understanding the ionic diffusion mechanism in polymer electrolytes is critical to the development o...
Atomistic analysis of the ion transport in polymer electrolytes for all-solid-state Li-ion batteries...
While ion transport in solid polymer electrolytes (SPEs) has been explored for decades, there still ...
Understanding the ionic diffusion mechanism in polymer electrolytes is critical to the development o...
We herein report an all-atom molecular dynamics study on the role of solvent polarity for Li+ diffus...
Monte Carlo simulations are used to study ion and polymer chain dynamic properties in a simplified l...
Nonaqueous polyelectrolyte solutions have been recently proposed as high Li+ transference number ele...