Developing cost-effective and high performance sodium-ion batteries (SIBs) relies mostly on advanced cathode materials with high electrode voltage, high capacity and fast sodium-ion diffusion. Here, we propose mixed sodium manganese oxides Nax(M0.44Mn0.56)O-2 (M = Mn, Fe, Co, Ni) as improved potential cathode materials for SIBs based on first-principles calculations. Our calculations reveal that these materials have relatively low volume expansion rates below 5%, and are thermodynamically stable. We find that the binding strength between the host and inserted Na atom gradually decreases as increasing the Na content x from 0.11 to 0.67 for each mixed compound, whereas it increases as going Mn -> Fe -> Co -> Ni at each value of Na content. Id...
Recently, room-temperature stationary sodium-ion batteries (SIBs) have received extensive investigat...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
The Na<sub>0.44</sub>MnO<sub>2</sub> structure is a promising cathode material for sodium ion batter...
Sodium-ion batteries (NIBs) are a promising solution for grid storage because they are inexpensive, ...
Sodium-ion batteries (SIBs) can develop cost-effective and safe energy storage technology for substa...
Sodium-ion batteries (SIBs) can develop cost-effective and safe energy storage technology for substa...
We report a 3.8 V manganese-based mixed-phosphate cathode material for applications in sodium rechar...
Structural, computational and electrochemical investigations are combined to study the intercalation...
The Na0.44MnO2 structure is a promising cathode material for sodium ion batteries due to a high capa...
Sodium-ion-based batteries have evolved as excellent alternatives to their lithium-ion-based counter...
Batteries are among the most widely used energy storage devices worldwide. With demand rising, as re...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
Room-temperature sodium-ion battery (NIB) has re-attracted increasing attention in recent years beca...
Manganese (Mn)-based cathodes with advantages of low-cost, environmental benign, high energy density...
Recently, room-temperature stationary sodium-ion batteries (SIBs) have received extensive investigat...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
The Na<sub>0.44</sub>MnO<sub>2</sub> structure is a promising cathode material for sodium ion batter...
Sodium-ion batteries (NIBs) are a promising solution for grid storage because they are inexpensive, ...
Sodium-ion batteries (SIBs) can develop cost-effective and safe energy storage technology for substa...
Sodium-ion batteries (SIBs) can develop cost-effective and safe energy storage technology for substa...
We report a 3.8 V manganese-based mixed-phosphate cathode material for applications in sodium rechar...
Structural, computational and electrochemical investigations are combined to study the intercalation...
The Na0.44MnO2 structure is a promising cathode material for sodium ion batteries due to a high capa...
Sodium-ion-based batteries have evolved as excellent alternatives to their lithium-ion-based counter...
Batteries are among the most widely used energy storage devices worldwide. With demand rising, as re...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
Room-temperature sodium-ion battery (NIB) has re-attracted increasing attention in recent years beca...
Manganese (Mn)-based cathodes with advantages of low-cost, environmental benign, high energy density...
Recently, room-temperature stationary sodium-ion batteries (SIBs) have received extensive investigat...
We have presented a detailed investigation of the effects of Mg substitution on the structure, elect...
The Na<sub>0.44</sub>MnO<sub>2</sub> structure is a promising cathode material for sodium ion batter...