Na-based batteries are proposed as promising energy storage candidates for beyond Li-ion technology due to the higher natural earth of Na metal. For its high capacity and low potential, Na metal may carve itself a niche when directly used as anodes. Similar to or even more problematic than Li, however, uneven plating/stripping of Na leads to dendrite formation. As the plating substrates, current collectors have a paramount influence on the Na plating/stripping behaviors. Here we propose porous Al current collectors as the plating substrate to suppress Na dendrites. Al does not alloy with Na. It is advantageous over Cu current collectors in terms of cost and weight. The interconnected porous structure can increase available surface for Na to...
Aluminum-metal batteries show great potential as next-generation energy storage due to their abundan...
Sodium-ion batteries (SIBs) have been pursued as a more cost-effective and more sustainable alternat...
Aluminum doping of the P2-type layered structure results in a Na-ion cathode material (Na0.6Ni0.22Al...
Dendrite formation limits the cycle life of lithium and sodium metal anodes and remainsa major chall...
Room-temperature Na-metal-based rechargeable batteries, including Na-O-2 and Na-S systems, have attr...
Sodium metal anode holds great promise in pursuing high-energy and sustainable rechargeable batterie...
Sodium metal (Na) anodes are considered the most promising anode for high-energy-density sodium batt...
Allâ solidâ state batteries with an alkali metal anode have the potential to achieve high energy d...
In order to progress beyond the state-of-the-art lithium-ion batteries (LIBs), it is necessary to re...
Alkali metals are among the most desirable negative electrodes for long duration energy storage due ...
The growing demands of human society on fossil fuels have caused serious problems of global warming ...
Sodium (Na) metal is one of the most promising electrode materials for next-generation low-cost rech...
Because of the superiority of low cost and high theoretical capacity, sodium metal batteries are con...
\u3cp\u3eSodium (Na) metal is one of the most promising electrode materials for next-generation low-...
Aluminum (Al) metal is an attractive anode material for next-generation rechargeable batteries, beca...
Aluminum-metal batteries show great potential as next-generation energy storage due to their abundan...
Sodium-ion batteries (SIBs) have been pursued as a more cost-effective and more sustainable alternat...
Aluminum doping of the P2-type layered structure results in a Na-ion cathode material (Na0.6Ni0.22Al...
Dendrite formation limits the cycle life of lithium and sodium metal anodes and remainsa major chall...
Room-temperature Na-metal-based rechargeable batteries, including Na-O-2 and Na-S systems, have attr...
Sodium metal anode holds great promise in pursuing high-energy and sustainable rechargeable batterie...
Sodium metal (Na) anodes are considered the most promising anode for high-energy-density sodium batt...
Allâ solidâ state batteries with an alkali metal anode have the potential to achieve high energy d...
In order to progress beyond the state-of-the-art lithium-ion batteries (LIBs), it is necessary to re...
Alkali metals are among the most desirable negative electrodes for long duration energy storage due ...
The growing demands of human society on fossil fuels have caused serious problems of global warming ...
Sodium (Na) metal is one of the most promising electrode materials for next-generation low-cost rech...
Because of the superiority of low cost and high theoretical capacity, sodium metal batteries are con...
\u3cp\u3eSodium (Na) metal is one of the most promising electrode materials for next-generation low-...
Aluminum (Al) metal is an attractive anode material for next-generation rechargeable batteries, beca...
Aluminum-metal batteries show great potential as next-generation energy storage due to their abundan...
Sodium-ion batteries (SIBs) have been pursued as a more cost-effective and more sustainable alternat...
Aluminum doping of the P2-type layered structure results in a Na-ion cathode material (Na0.6Ni0.22Al...