© 2021 Elsevier Masson SAS We first present a model coupling the electrochemical reaction with strain gradient plasticity for a spherical electrode, which aims to analyze the evolutions and distributions of electrochemical-reaction dislocations and diffusion-induced stress during lithiation process. Several critical features viewed by in-situ TEM are incorporated into this model, such as the two-phase boundary and high-density dislocations at the reaction front. It is shown that the microstructure evolution can impact the mechanical properties and electrochemical performances of electrode materials. The results obtained by a finite difference method indicate that, as lithiation proceeds, the circumferential stress on the surface of the ...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
A finite strain phase field fracture model is presented which treats phase segregation, fracture and...
AbstractOf all materials, silicon has the highest capacity to store lithium, and is being developed ...
Masson SAS Capacity fade induced by chemo-mechanical degradation during charge-discharge cycles is t...
When lithium-ion batteries serve in extreme environments like space, severe irradiation might induce...
Rechargeable Li-ion batteries operate by cyclically inserting lithium into, and extracting lithium f...
Lithium insertion and removal in lithium ion battery electrodes can result in diffusion induced stre...
High-capacity electrodes in Li-ion batteries inevitably undergo a large volume deformation originati...
In this paper, a new reaction-diffusion model, coupling the reversible electrochemical reaction, Lit...
In the development of the next generation of batteries with high capacity, improving our understandi...
This thesis investigates the electro-chemo-mechanics behavior of electrodes in lithium ion batteries...
Lithium-ion batteries (LIBs) in space or extreme environments may suffer irradiation and during oper...
Li-ion batteries are ineluctably subjected to external mechanical loading or stress gradient. Such s...
Lithium (Li) inserted into or extracted from the electrode in Li-ion battery causes stress which may...
Evidence has accumulated recently that a high-capacity elec-trode of a lithium-ion battery may not r...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
A finite strain phase field fracture model is presented which treats phase segregation, fracture and...
AbstractOf all materials, silicon has the highest capacity to store lithium, and is being developed ...
Masson SAS Capacity fade induced by chemo-mechanical degradation during charge-discharge cycles is t...
When lithium-ion batteries serve in extreme environments like space, severe irradiation might induce...
Rechargeable Li-ion batteries operate by cyclically inserting lithium into, and extracting lithium f...
Lithium insertion and removal in lithium ion battery electrodes can result in diffusion induced stre...
High-capacity electrodes in Li-ion batteries inevitably undergo a large volume deformation originati...
In this paper, a new reaction-diffusion model, coupling the reversible electrochemical reaction, Lit...
In the development of the next generation of batteries with high capacity, improving our understandi...
This thesis investigates the electro-chemo-mechanics behavior of electrodes in lithium ion batteries...
Lithium-ion batteries (LIBs) in space or extreme environments may suffer irradiation and during oper...
Li-ion batteries are ineluctably subjected to external mechanical loading or stress gradient. Such s...
Lithium (Li) inserted into or extracted from the electrode in Li-ion battery causes stress which may...
Evidence has accumulated recently that a high-capacity elec-trode of a lithium-ion battery may not r...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
A finite strain phase field fracture model is presented which treats phase segregation, fracture and...
AbstractOf all materials, silicon has the highest capacity to store lithium, and is being developed ...