An in-depth understanding of electrode reactions is essential to achieve a breakthrough in lithium-ion battery technology, the new 'engine' for electric vehicles. Recent studies have continued to reveal unexpected electrode behaviors, providing a more refined view of the operating mechanisms of electrodes from the atomistic to particle level and offering new perspectives to design better battery systems. Herein, it is observed for the first time that the history of applied current densities is memorized in electrode materials that operate via a two-phase reaction and systematically induces a transient galvanostatic profile variation of the electrode. These unforeseen profile changes can be explained by a new proposed intercalation...
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...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
An in-depth understanding of electrode reactions is essential to achieve a breakthrough in lithium-i...
This thesis discusses mathematical models for phase separation pattern in electrode materials for l...
Many battery electrodes contain ensembles of nanoparticles that phase-separate on (de)intercalation....
This thesis discusses mathematical models for phase separation pattern in electrode materials for li...
We study a rechargeable lithium-ion battery that uses a many-particle FePO4 electrode to reversibly ...
A microscopic model of a lithium battery is developed, which accounts for lithium diffusion within p...
Lithium-ion batteries exhibit complex nonlinear dynamics, resulting from diffusion and phase transfo...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
Lithium transport and phase separation in and across interconnected electrode particles, are investi...
Lithium transport and phase separation in and across interconnected electrode particles, are investi...
Abstract. Lithium-ion batteries exhibit complex nonlinear dynamics, resulting from diffusion and pha...
Lithium transport and phase separation in and across interconnected electrode particles are investig...
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...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...
An in-depth understanding of electrode reactions is essential to achieve a breakthrough in lithium-i...
This thesis discusses mathematical models for phase separation pattern in electrode materials for l...
Many battery electrodes contain ensembles of nanoparticles that phase-separate on (de)intercalation....
This thesis discusses mathematical models for phase separation pattern in electrode materials for li...
We study a rechargeable lithium-ion battery that uses a many-particle FePO4 electrode to reversibly ...
A microscopic model of a lithium battery is developed, which accounts for lithium diffusion within p...
Lithium-ion batteries exhibit complex nonlinear dynamics, resulting from diffusion and phase transfo...
In the framework of non-equilibrium thermodynamics, we derive a new model for many-particle electrod...
Lithium transport and phase separation in and across interconnected electrode particles, are investi...
Lithium transport and phase separation in and across interconnected electrode particles, are investi...
Abstract. Lithium-ion batteries exhibit complex nonlinear dynamics, resulting from diffusion and pha...
Lithium transport and phase separation in and across interconnected electrode particles are investig...
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...
Incorporation of ions into battery electrodes can lead to phase transformations. When multiparticle ...