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Particle-Level Modeling of the Charge-Discharge Behavior of Nanoparticulate Phase-Separating Li-Ion Battery Electrodes

Authors :
Hui-Chia Yu
Bernardo Orvananos
Todd R. Ferguson
Martin Z. Bazant
Katsuyo Thornton
Massachusetts Institute of Technology. Department of Chemical Engineering
Massachusetts Institute of Technology. Department of Mathematics
Ferguson, Todd Richard
Bazant, Martin Z.
Source :
arXiv
Publication Year :
2013
Publisher :
arXiv, 2013.

Abstract

In nanoparticulate phase-separating electrodes, phase separation inside the particles can be hindered during their charge/discharge cycles even when a thermodynamic driving force for phase separation exists. In such cases, particles may (de)lithiate discretely in a process referred to as mosaic instability. This instability could be the key to elucidating the complex charge/discharge dynamics in nanoparticulate phase-separating electrodes. In this paper, the dynamics of the mosaic instability is studied using Smoothed Boundary Method simulations at the particle level, where the concentration and electrostatic potential fields are spatially resolved around individual particles. Two sets of configurations consisting of spherical particles with an identical radius are employed to study the instability in detail. The effect of an activity-dependent exchange current density on the mosaic instability, which leads to asymmetric charge/discharge, is also studied. While we show that our model reproduces the results of a porous-electrode model for the simple setup studied here, it is a powerful framework with the capability to predict the detailed dynamics in three-dimensional complex electrodes and provides further insights into the complex dynamics that result from the coupling of electrochemistry, thermodynamics, and transport kinetics.<br />National Science Foundation (U.S.) (Contract No. DMS-0842504)<br />National Science Foundation (U.S.) (grant number OCI-1053575, under allocation No. TG-DMR110007)<br />National Science Foundation (U.S.) (Contract No. DMS-0948071)<br />Samsung (Firm) (Samsung-MIT Program for Materials Design and Energy Applications)

Details

Database :
OpenAIRE
Journal :
arXiv
Accession number :
edsair.doi.dedup.....7bfd08931d3043ac865f425aa5dbe944
Full Text :
https://doi.org/10.48550/arxiv.1309.6495