In this article, we present a novel theory for the long term evolution of the solid electrolyte interphase (SEI) in lithium-ion batteries and propose novel validation measurements. Both SEI thickness and morphology are predicted by our model as we take into account two transport mechanisms, i.e., solvent diffusion in the SEI pores and charge transport in the solid SEI phase. We show that a porous SEI is created due to the interplay of these transport mechanisms. Different dual layer SEIs emerge from different electrolyte decomposition reactions. We reveal the behavior of such dual layer structures and discuss its dependence on system parameters. Model analysis enables us to interpret SEI thickness fluctuations and link them to the rate-limi...
We develop a novel theory for the continuous electrochemical formation of porous films to study the ...
Lithium ion batteries have been used for decades in numerous applications. In the near future, they ...
The quality of lithium-ion batteries is affected by the formation of the solid electrolyte interphas...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
We develop a novel theory for the continuous electrochemical formation of porous films to study the ...
A solid electrolyte interphase (SEI) forms on lithium-ion battery anode surfaces during cycling. The...
During the first charge of a fresh lithium ion battery lithium is intercalated into the negative ele...
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...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
Continuous capacity fade during the lifetime of lithium ion batteries is mainly attributed to the gr...
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 ...
We develop a novel theory for the continuous electrochemical formation of porous films to study the ...
Lithium ion batteries have been used for decades in numerous applications. In the near future, they ...
The quality of lithium-ion batteries is affected by the formation of the solid electrolyte interphas...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
When a lithium ion battery is fully charged, the potential of its negative electrode is outside the ...
We develop a novel theory for the continuous electrochemical formation of porous films to study the ...
A solid electrolyte interphase (SEI) forms on lithium-ion battery anode surfaces during cycling. The...
During the first charge of a fresh lithium ion battery lithium is intercalated into the negative ele...
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...
This work presents a rigorous continuum mechanics model of solvent diffusion describing the growth o...
Continuous capacity fade during the lifetime of lithium ion batteries is mainly attributed to the gr...
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 ...
We develop a novel theory for the continuous electrochemical formation of porous films to study the ...
Lithium ion batteries have been used for decades in numerous applications. In the near future, they ...
The quality of lithium-ion batteries is affected by the formation of the solid electrolyte interphas...