This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth of solid-electrolyte interfaces (SEIs) in Li-ion cells incorporating carbon anodes. The model assumes that a reactive solvent component diffuses through the SEI and undergoes two-electron reduction at the carbon-SEI interface. Solvent reduction produces an insoluble product, resulting in increasing SEI thickness. The model predicts that the SEI thickness increases linearly with the square root of time. Experimental data from the literature for capacity loss in two types of prototype Li-ion cells validates the solvent diffusion model. We use the model to estimate SEI thickness and extract solvent diffusivity values from the capacity loss data. ...
In this study, a mathematical model to investigate the combined effect of SEI film formation and gas...
The capacity fade of modern lithium ion batteries is mainly caused by the formation and growth of th...
The solid-electrolyte interphase (SEI) substantially influences the lifetime of lithium-ion batterie...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
In this article, we present a novel theory for the long term evolution of the solid electrolyte inte...
Predicting lithium-ion battery (LIB) lifetime is one of the most important challenges holding back t...
Continued growth of the solid-electrolyte interphase (SEI) is the major reason for capacity fade in ...
Continued growth of the solid-electrolyte interphase (SEI) is the major reason for capacity fade in ...
A general mathematical model to study capacity fading in lithium ion batteries is developed. The mod...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
The solid-electrolyte interphase (SEI) substantially influences the lifetime of lithium-ion batterie...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
A solid electrolyte interphase (SEI) forms on lithium-ion battery anode surfaces during cycling. The...
In this study, a mathematical model to investigate the combined effect of SEI film formation and gas...
The capacity fade of modern lithium ion batteries is mainly caused by the formation and growth of th...
The solid-electrolyte interphase (SEI) substantially influences the lifetime of lithium-ion batterie...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
In this article, we present a novel theory for the long term evolution of the solid electrolyte inte...
Predicting lithium-ion battery (LIB) lifetime is one of the most important challenges holding back t...
Continued growth of the solid-electrolyte interphase (SEI) is the major reason for capacity fade in ...
Continued growth of the solid-electrolyte interphase (SEI) is the major reason for capacity fade in ...
A general mathematical model to study capacity fading in lithium ion batteries is developed. The mod...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
The solid-electrolyte interphase (SEI) substantially influences the lifetime of lithium-ion batterie...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
A solid electrolyte interphase (SEI) forms on lithium-ion battery anode surfaces during cycling. The...
In this study, a mathematical model to investigate the combined effect of SEI film formation and gas...
The capacity fade of modern lithium ion batteries is mainly caused by the formation and growth of th...
The solid-electrolyte interphase (SEI) substantially influences the lifetime of lithium-ion batterie...