In this paper, a computational study of Li, Na, and K adsorption and migration on pristine and defective graphene surfaces is conducted to gain insight into the metal storage and mobility in carbon-based anodes for alkali metal batteries. Atomic level studies of the metal adsorption and migration on the graphene surface can help address the challenges faced in the development of novel alkali metal battery technologies, as these systems act as convenient proxies of the crystalline carbon surface in carbon-based materials including graphite, hard carbons and graphene. The adsorption of Li and K ions on the pristine graphene surface is shown to be more energetically favourable than Na adsorption. A collection of defects expected to be found in...
Carbon-based anodes are technologically highly relevant for Li and post-Li ion batteries. While the ...
To evaluate the possible utility of single layer graphene for applications in Li ion batteries, an e...
Hard carbon is the most promising anode material for sodium-ion batteries and potassium-ion batterie...
In this paper, a computational study of Li, Na, and K adsorption and migration on pristine and defec...
The need for sustainable and large-scale energy supply has led to significant development of renewab...
Hard carbon anodes have shown significant promise for next‐generation battery technologies. These na...
Adsorption of Li and Na on pristine and defective graphene and graphene oxide (GO) is studied using ...
Alkali metal ion batteries are instrumental in the widespread implementation of electric vehicles, p...
Hard carbons are among the most promising materials for alkali-ion metal anodes. These materials hav...
The adsorption of alkali metals (AMs) on single layer graphene is studied using first principles met...
There are several questions and controversies regarding the Na storage mechanism in hard carbon. Thi...
We performed first-principles calculations to reveal the possibility of applying pristine, defective...
Theoretical investigations are made on adsorption and diffusion of atoms/ions on graphene surface ba...
The interaction of metals with carbon materials (and specifically with graphene) is of importance fo...
The interaction of metals with carbon materials (and specifically with graphene) is of importance fo...
Carbon-based anodes are technologically highly relevant for Li and post-Li ion batteries. While the ...
To evaluate the possible utility of single layer graphene for applications in Li ion batteries, an e...
Hard carbon is the most promising anode material for sodium-ion batteries and potassium-ion batterie...
In this paper, a computational study of Li, Na, and K adsorption and migration on pristine and defec...
The need for sustainable and large-scale energy supply has led to significant development of renewab...
Hard carbon anodes have shown significant promise for next‐generation battery technologies. These na...
Adsorption of Li and Na on pristine and defective graphene and graphene oxide (GO) is studied using ...
Alkali metal ion batteries are instrumental in the widespread implementation of electric vehicles, p...
Hard carbons are among the most promising materials for alkali-ion metal anodes. These materials hav...
The adsorption of alkali metals (AMs) on single layer graphene is studied using first principles met...
There are several questions and controversies regarding the Na storage mechanism in hard carbon. Thi...
We performed first-principles calculations to reveal the possibility of applying pristine, defective...
Theoretical investigations are made on adsorption and diffusion of atoms/ions on graphene surface ba...
The interaction of metals with carbon materials (and specifically with graphene) is of importance fo...
The interaction of metals with carbon materials (and specifically with graphene) is of importance fo...
Carbon-based anodes are technologically highly relevant for Li and post-Li ion batteries. While the ...
To evaluate the possible utility of single layer graphene for applications in Li ion batteries, an e...
Hard carbon is the most promising anode material for sodium-ion batteries and potassium-ion batterie...