In the framework of non-equilibrium thermodynamics we derive a new model for porous electrodes. The model is applied to LiFePO4 (LFP) electrodes consisting of many LFP particles of nanometer size. The phase transition from a lithium-poor to a lithium-rich phase within LFP electrodes is controlled by surface fluctuations leading to a system of stochastic differential equations. The model is capable to derive an explicit relation between battery voltage and current that is controlled by thermodynamic state variables. This voltage-current relation reveals that in thin LFP electrodes lithium intercalation from the particle surfaces into the LFP particles is the principal rate limiting process. There are only two constant kinetic parameters in t...
Porous electrodes composed of multiphase active materials are widely used in Li-ion batteries, but t...
This thesis discusses mathematical models for phase separation pattern in electrode materials for li...
Numerical simulations of microscopic transport processes in porous electrodes of lithium‐ion batteri...
In the framework of non-equilibrium thermodynamics we derive a new model for porous electrodes. The ...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
This thesis discusses mathematical models for phase separation pattern in electrode materials for l...
Numerical simulations of microscopic transport processes in porous electrodes of lithium‐ion batteri...
Porous electrodes composed of multiphase active materials are widely used in Li-ion batteries, but t...
This thesis discusses mathematical models for phase separation pattern in electrode materials for li...
Numerical simulations of microscopic transport processes in porous electrodes of lithium‐ion batteri...
In the framework of non-equilibrium thermodynamics we derive a new model for porous electrodes. The ...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
International audienceThe previously presented mesoscopic model [Phys. Chem. Chem. Phys., 16, 22555,...
This thesis discusses mathematical models for phase separation pattern in electrode materials for l...
Numerical simulations of microscopic transport processes in porous electrodes of lithium‐ion batteri...
Porous electrodes composed of multiphase active materials are widely used in Li-ion batteries, but t...
This thesis discusses mathematical models for phase separation pattern in electrode materials for li...
Numerical simulations of microscopic transport processes in porous electrodes of lithium‐ion batteri...