Promising theoretical capacities and high voltages are offered by Li-rich disordered rocksalt oxyfluoride materials as cathodes in lithium-ion batteries. However, as has been discovered for many other Li-rich materials, the oxyfluorides suffer from extensive surface degradation, leading to severe capacity fading. In the case of Li2VO2F, we have previously determined this to be a result of detrimental reactions between an unstable surface layer and the organic electrolyte. Herein, we present the protection of Li2VO2F particles with AIF(3) surface modification, resulting in a much-enhanced capacity retention over 50 cycles. While the specific capacity for the untreated material drops below 100 mA h g(-1) after only 50 cycles, the treated mate...
More energy dense lithium ion batteries are essential for the production of long-range electric vehi...
Recent progress in the understanding of percolation theory points to cation-disordered lithium-exces...
Cation disordered rock-salt lithium-excess oxides are promising candidate cathode materials for next...
Promising theoretical capacities and high voltages are offered by Li-rich disordered rocksalt oxyflu...
The increased energy density in Li-ion batteries is particularly dependent on the cathode materials ...
Lithium-rich transition metal disordered rock salt (DRS) oxyfluorides have the potential to lessen o...
Cation-disordered rocksalt (DRX) materials have emerged as a class of novel high-capacity cathodes f...
Manganese based disordered rocksalt systems have attracted attention as Co-free and high capacity ca...
Cation-disordered rocksalt (DRX) oxides are a promising new class of high-energy-density cathode mat...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
Mixed-anion oxyfluorides (<i>i.e.</i>, FeO<sub><i>x</i></sub>F<sub>2–<i>x</i></sub>) are an appealin...
The demand for high-performance lithium-ion batteries and thus efficient cathode materials is steadi...
The unstable electrode/electrolyte interface is one of the key obstacles for practical Ah-level Li m...
Lithium-ion batteries (LIBs) have been recently gained recognition as one of the most reliable energ...
Capacity loss of lithium ion batteries develop over the period of a few years at room temperature an...
More energy dense lithium ion batteries are essential for the production of long-range electric vehi...
Recent progress in the understanding of percolation theory points to cation-disordered lithium-exces...
Cation disordered rock-salt lithium-excess oxides are promising candidate cathode materials for next...
Promising theoretical capacities and high voltages are offered by Li-rich disordered rocksalt oxyflu...
The increased energy density in Li-ion batteries is particularly dependent on the cathode materials ...
Lithium-rich transition metal disordered rock salt (DRS) oxyfluorides have the potential to lessen o...
Cation-disordered rocksalt (DRX) materials have emerged as a class of novel high-capacity cathodes f...
Manganese based disordered rocksalt systems have attracted attention as Co-free and high capacity ca...
Cation-disordered rocksalt (DRX) oxides are a promising new class of high-energy-density cathode mat...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
Mixed-anion oxyfluorides (<i>i.e.</i>, FeO<sub><i>x</i></sub>F<sub>2–<i>x</i></sub>) are an appealin...
The demand for high-performance lithium-ion batteries and thus efficient cathode materials is steadi...
The unstable electrode/electrolyte interface is one of the key obstacles for practical Ah-level Li m...
Lithium-ion batteries (LIBs) have been recently gained recognition as one of the most reliable energ...
Capacity loss of lithium ion batteries develop over the period of a few years at room temperature an...
More energy dense lithium ion batteries are essential for the production of long-range electric vehi...
Recent progress in the understanding of percolation theory points to cation-disordered lithium-exces...
Cation disordered rock-salt lithium-excess oxides are promising candidate cathode materials for next...