Layered lithium transition metal oxides derived from LiMO2 (M = Co, Ni, Mn, etc.) have been widely adopted as the cathodes of Li-ion batteries for portable electronics, electric vehicles, and energy storage. Oxygen loss in the layered oxides is one of the major factors leading to cycling-induced structural degradation and its associated fade in electrochemical performance. Herein, we review recent progress in understanding the phenomena of oxygen loss and the resulting structural degradation in layered oxide cathodes. We first present the major driving forces leading to the oxygen loss and then describe the associated structural degradation resulting from the oxygen loss. We follow this analysis with a discussion of the kinetic pathways tha...
The use of high-energy-density lithium-rich layered-oxide electrodes in batteries is hindered by vol...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
Lithium-excess 3d-transition-metal layered oxides (Li1+xNiyCozMn1-x-y-zO2, >250 mAh g-1) suffer f...
Lithium-excess 3d-transition-metal layered oxides (Li1+xNiyCozMn1-x-y-zO2, >250 mAh g-1) suffer f...
Lithium‐rich transition metal cathodes can deliver higher capacities than stoichiometric materials b...
The substantial capacity gap between available anode and cathode materials for commercial Li-ion bat...
Lithium-rich layered transition metal oxide cathode, represented as the chemical formula of xLi2MnO3...
ABSTRACT: Oxygen loss can lead to high-capacity Li2MnO3-based lithium-rich layered cathodes. Substit...
In high-capacity layered oxide cathode materials, utilization of lattice oxygen as a redox center is...
In high-capacity layered oxide cathode materials, utilization of lattice oxygen as a redox center is...
Archetypical layered oxide with oxygen redox capability bears an additional lithium ion in a transit...
LiNiO2 (LNO) is a promising cathode material for next-generation Li-ion batteries due to its excepti...
The use of high-energy-density lithium-rich layered-oxide electrodes in batteries is hindered by vol...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
Lithium-excess 3d-transition-metal layered oxides (Li1+xNiyCozMn1-x-y-zO2, >250 mAh g-1) suffer f...
Lithium-excess 3d-transition-metal layered oxides (Li1+xNiyCozMn1-x-y-zO2, >250 mAh g-1) suffer f...
Lithium‐rich transition metal cathodes can deliver higher capacities than stoichiometric materials b...
The substantial capacity gap between available anode and cathode materials for commercial Li-ion bat...
Lithium-rich layered transition metal oxide cathode, represented as the chemical formula of xLi2MnO3...
ABSTRACT: Oxygen loss can lead to high-capacity Li2MnO3-based lithium-rich layered cathodes. Substit...
In high-capacity layered oxide cathode materials, utilization of lattice oxygen as a redox center is...
In high-capacity layered oxide cathode materials, utilization of lattice oxygen as a redox center is...
Archetypical layered oxide with oxygen redox capability bears an additional lithium ion in a transit...
LiNiO2 (LNO) is a promising cathode material for next-generation Li-ion batteries due to its excepti...
The use of high-energy-density lithium-rich layered-oxide electrodes in batteries is hindered by vol...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...
Li-rich layered oxide cathodes with conventional transition metal cation and unique oxygen anion red...