The cycling stability of LiCoO[subscript 2] under high voltages (>4.5 V) was plagued by hybrid anion- and cation-redox (HACR) induced oxygen escape and uncontrolled phase collapse. With DEMS and in situ XANES mapping at the NSLS-II, we demonstrate that oxygen escape triggers irreversible transformations into “bad” surface phases that rapidly propagate inward. Enabling HACR but stopping global oxygen migration is key to a stable high-energy cathode. Therefore, we developed ∼10 μm single crystals with LiCoO[subscript 2] in the bulk smoothly transitioning to Co-free LiMn[subscript 0.75]Ni[subscript0.25]O[subscript 2] at the surface. By means of initial electrochemical formation, a semi-coherent LiMn[subscript 1.5]Ni[subscript 0.5]O[subscript 4...
International audienceHigh-energy-density lithium-rich materials are of significant interest for adv...
Recently, anionic activity, oxygen redox reaction, has been discovered in the electrochemical proces...
Battery industries and research groups are further investigating LiCoO2 to unravel the capacity at h...
The working mechanism of LiCoO2 beyond 4.6 V presents complicated issues: (1) the ambiguous multistr...
© 2020 Wiley-VCH GmbH Li-rich metal oxide (LXMO) cathodes have attracted intense interest for rechar...
Increasing the charging cutoff voltage is a viable approach to push the energy density limits of LiC...
LiCoO2 is a dominant cathode material for lithium-ion (Li-ion) batteries due to its high volumetric ...
The irreversible oxygen redox and the resulting structure degradation of LiCoO2 at a high voltage ca...
The thermodynamic instability of the LiCoO2 layered structure at >0.5Li extraction has been consi...
The practical application of high-voltage lithium cobalt oxide (LCO) has been hampered by the severe...
The thermodynamic instability of the LiCoO2 layered structure at >0.5Li extraction has been consider...
High voltage LiCoO2 delivers a high capacity but sharp fading is a critical issue, and the capacity ...
LiCoO2 has suffered from poor stability under high voltage as a result of insufficient Co–O bonding ...
Although Ni-rich layered materials with the general formula LiNi1-x-yCoxMnyO2 (0 < x, y < 1, N...
LiNiO2 (LNO) is a promising cathode material for next-generation Li-ion batteries due to its excepti...
International audienceHigh-energy-density lithium-rich materials are of significant interest for adv...
Recently, anionic activity, oxygen redox reaction, has been discovered in the electrochemical proces...
Battery industries and research groups are further investigating LiCoO2 to unravel the capacity at h...
The working mechanism of LiCoO2 beyond 4.6 V presents complicated issues: (1) the ambiguous multistr...
© 2020 Wiley-VCH GmbH Li-rich metal oxide (LXMO) cathodes have attracted intense interest for rechar...
Increasing the charging cutoff voltage is a viable approach to push the energy density limits of LiC...
LiCoO2 is a dominant cathode material for lithium-ion (Li-ion) batteries due to its high volumetric ...
The irreversible oxygen redox and the resulting structure degradation of LiCoO2 at a high voltage ca...
The thermodynamic instability of the LiCoO2 layered structure at >0.5Li extraction has been consi...
The practical application of high-voltage lithium cobalt oxide (LCO) has been hampered by the severe...
The thermodynamic instability of the LiCoO2 layered structure at >0.5Li extraction has been consider...
High voltage LiCoO2 delivers a high capacity but sharp fading is a critical issue, and the capacity ...
LiCoO2 has suffered from poor stability under high voltage as a result of insufficient Co–O bonding ...
Although Ni-rich layered materials with the general formula LiNi1-x-yCoxMnyO2 (0 < x, y < 1, N...
LiNiO2 (LNO) is a promising cathode material for next-generation Li-ion batteries due to its excepti...
International audienceHigh-energy-density lithium-rich materials are of significant interest for adv...
Recently, anionic activity, oxygen redox reaction, has been discovered in the electrochemical proces...
Battery industries and research groups are further investigating LiCoO2 to unravel the capacity at h...