Building a stable chemical environment at the cathode/electrolyte interface is directly linked to the durability of Li-ion batteries with high energy density. Recently, colloidal chemistry methods have enabled the design of core–shell nanocrystals of Li1+xMn2–xO4, an important battery cathode, with passivating shells rich in Al3+ through a colloidal synthetic route. These heterostructures combine the presence of redox-inactive ions on the surface to minimize undesired reactions, with the coverage of each individual particle in an epitaxial manner. Although they improve electrode performance, the exact chemistry and structure of the shell as well as the precise effect of the ratio between the shell and the active core remain to be elucidated...
Molecular dynamics (MD) simulations of the charging of Li2MnO3 reveal that the reason nanocrystallin...
Various LiMn2O4 electrode materials, having different crystallite sizes ranging from ∼50Å to ∼500Å, ...
The introduction of the first commercially produced Li-ion battery by Sony in 1990 sparked a period ...
Core–shell structures offer opportunities to overcome challenges to the durability of Li-ion batteri...
Chemical degradation at electrode/electrolyte interfaces in high-energy storage devices, such as Li-...
Traditional electrode materials are based on the redox potential difference of the electrode in the ...
In recent years, the search for new electrode materials for rechargeable Li-ion batteries has underg...
The need for energy storage continues to grow due to our increasing use of consumer electronics, and...
Aditional electrode materials are based on the redox potential difference of the electrode in the c...
Mn dissolution is the main drawback of LiMn2O4 cathodes, leading to capacity fading and anode poison...
Surface Nanoparticles modifications have been observed on alumina coated LiMn2O4(LMO) cathodes with ...
ABSTRACT: Fine-tuning of particle size and morphology has been shown to result in differential mater...
Lithiation-delithiation reactions in Li-ion batteries do exhibit a huge electrochemically driven vol...
With an ever-growing number of applications, from portable electronics to electric vehicles, that re...
Fine-tuning of particle size and morphology has been shown to result in differential material perfor...
Molecular dynamics (MD) simulations of the charging of Li2MnO3 reveal that the reason nanocrystallin...
Various LiMn2O4 electrode materials, having different crystallite sizes ranging from ∼50Å to ∼500Å, ...
The introduction of the first commercially produced Li-ion battery by Sony in 1990 sparked a period ...
Core–shell structures offer opportunities to overcome challenges to the durability of Li-ion batteri...
Chemical degradation at electrode/electrolyte interfaces in high-energy storage devices, such as Li-...
Traditional electrode materials are based on the redox potential difference of the electrode in the ...
In recent years, the search for new electrode materials for rechargeable Li-ion batteries has underg...
The need for energy storage continues to grow due to our increasing use of consumer electronics, and...
Aditional electrode materials are based on the redox potential difference of the electrode in the c...
Mn dissolution is the main drawback of LiMn2O4 cathodes, leading to capacity fading and anode poison...
Surface Nanoparticles modifications have been observed on alumina coated LiMn2O4(LMO) cathodes with ...
ABSTRACT: Fine-tuning of particle size and morphology has been shown to result in differential mater...
Lithiation-delithiation reactions in Li-ion batteries do exhibit a huge electrochemically driven vol...
With an ever-growing number of applications, from portable electronics to electric vehicles, that re...
Fine-tuning of particle size and morphology has been shown to result in differential material perfor...
Molecular dynamics (MD) simulations of the charging of Li2MnO3 reveal that the reason nanocrystallin...
Various LiMn2O4 electrode materials, having different crystallite sizes ranging from ∼50Å to ∼500Å, ...
The introduction of the first commercially produced Li-ion battery by Sony in 1990 sparked a period ...