Oxidative decomposition of solid lithium peroxide is an important part of the charging process in a Li-O2 battery. In this paper, we investigate oxidative decomposition mechanisms of lithium peroxide clusters as molecular models for solid lithium peroxide using density functional methods to understand charging processes in advanced energy storage systems. Most calculations are done using a (Li2O2)4 cluster with similar results obtained from a larger (Li2O2)16 cluster. Reaction pathways of the clusters involving different sequences of oxidation, oxygen evolution, lithium cation removal, and spin excitation are investigated. The computations suggest that certain oxidative decomposition routes may not have dependence on the oxygen evolution or...
Active research on the aprotic Li-air battery has been drawn by its high theoretical energy and powe...
In this work, we perform density functional theory calculations using the hybrid functional Heyd−Scu...
An ongoing challenge with lithium-oxygen (Li-O2) batteries is in deciphering the oxygen evolution re...
We present a combined classical and density functional theory (DFT) based Molecular Dynamics (MD) st...
The prospect of Li–air(oxygen) batteries has generated much interest because of the possibility of ...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
We present a combined classical and density functional theory (DFT) based Molecular Dynamics (MD) st...
Li-air batteries ideally make use of oxygen from the atmosphere and metallic lithium to reversibly d...
The discharge mechanism of a Li–O<sub>2</sub> battery involves lithium superoxide (LiO<sub>2</sub>) ...
The lithium-air chemistry is an interesting candidate for the next-generation batteries with high sp...
Knowledge of the precise molecular mechanisms during the discharge and recharge processes in the lit...
Abstract Accurate knowledge of the oxidation stages of lithium is crucially important for developing...
Electrochemical stability windows of electrolytes largely determine the limitations of operating reg...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
Active research on the aprotic Li-air battery has been drawn by its high theoretical energy and powe...
In this work, we perform density functional theory calculations using the hybrid functional Heyd−Scu...
An ongoing challenge with lithium-oxygen (Li-O2) batteries is in deciphering the oxygen evolution re...
We present a combined classical and density functional theory (DFT) based Molecular Dynamics (MD) st...
The prospect of Li–air(oxygen) batteries has generated much interest because of the possibility of ...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
We present a combined classical and density functional theory (DFT) based Molecular Dynamics (MD) st...
Li-air batteries ideally make use of oxygen from the atmosphere and metallic lithium to reversibly d...
The discharge mechanism of a Li–O<sub>2</sub> battery involves lithium superoxide (LiO<sub>2</sub>) ...
The lithium-air chemistry is an interesting candidate for the next-generation batteries with high sp...
Knowledge of the precise molecular mechanisms during the discharge and recharge processes in the lit...
Abstract Accurate knowledge of the oxidation stages of lithium is crucially important for developing...
Electrochemical stability windows of electrolytes largely determine the limitations of operating reg...
The reversibility and capacity of current lithium/air cells are severely limited by the high overpot...
Active research on the aprotic Li-air battery has been drawn by its high theoretical energy and powe...
In this work, we perform density functional theory calculations using the hybrid functional Heyd−Scu...
An ongoing challenge with lithium-oxygen (Li-O2) batteries is in deciphering the oxygen evolution re...