Most storage materials exhibit phase changes, which cause stresses and, thus, lead to damage of the electrode particles. In this work, a phase-field model for the cathode material NaxFePO4 of Na-ion batteries is studied to understand phase changes and stress evolution. Furthermore, we study the particle size and SOC dependent miscibility gap of the nanoscale insertion materials. Finally, we introduce the nonlocal species concentration theory, and show how the nonlocality influences the results
Mechanical degradation is thought to be one of the causes of capacity fade within Lithium-Ion batter...
A fast numerical method for an advanced electro-chemo-mechanical model is developed which is able to...
© 2017 The Electrochemical Society. All rights reserved. Herein, we present a phase-field model (PFM...
Most storage materials exhibit phase changes, which cause stresses and, thus, lead to damage of the ...
In this study, the phase separation phenomenon and diffusion-induced stresses in lithium iron phosph...
Experiments have frequently shown that phase separation in lithium-battery electrodes could lead to ...
Lithium iron phosphate (LiFePO4) is the prototypical two-phase battery material whose complex patter...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
This chapter reviews several theoretical models that are used to compute the stress fields inside th...
The nonequilibrium phase transformation and particle shape effects in LiFePO4 materials of Li-ion ba...
Lithium-ion batteries, with their high energy densities and light-weight designs, have found broad a...
A theoretical investigation of the effects of elastic coherency strain on the thermodynamics, kineti...
In active electrode materials of litium ion batteries, there exists a coupling beween the field of l...
A fast numerical method for an advanced electro-chemo-mechanical model is developed which is able to...
Experiments have frequently shown that phase separation in lithium-ion battery electrodes could lead...
Mechanical degradation is thought to be one of the causes of capacity fade within Lithium-Ion batter...
A fast numerical method for an advanced electro-chemo-mechanical model is developed which is able to...
© 2017 The Electrochemical Society. All rights reserved. Herein, we present a phase-field model (PFM...
Most storage materials exhibit phase changes, which cause stresses and, thus, lead to damage of the ...
In this study, the phase separation phenomenon and diffusion-induced stresses in lithium iron phosph...
Experiments have frequently shown that phase separation in lithium-battery electrodes could lead to ...
Lithium iron phosphate (LiFePO4) is the prototypical two-phase battery material whose complex patter...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
This chapter reviews several theoretical models that are used to compute the stress fields inside th...
The nonequilibrium phase transformation and particle shape effects in LiFePO4 materials of Li-ion ba...
Lithium-ion batteries, with their high energy densities and light-weight designs, have found broad a...
A theoretical investigation of the effects of elastic coherency strain on the thermodynamics, kineti...
In active electrode materials of litium ion batteries, there exists a coupling beween the field of l...
A fast numerical method for an advanced electro-chemo-mechanical model is developed which is able to...
Experiments have frequently shown that phase separation in lithium-ion battery electrodes could lead...
Mechanical degradation is thought to be one of the causes of capacity fade within Lithium-Ion batter...
A fast numerical method for an advanced electro-chemo-mechanical model is developed which is able to...
© 2017 The Electrochemical Society. All rights reserved. Herein, we present a phase-field model (PFM...