We performed ReaxFF-molecular dynamics (MD) simulations of the oxidation of aluminum nanoparticles (ANPs) at three different temperatures (300, 500, and 900 K) and two different initial oxygen densities (0.13 and 0.26 g/cm<sup>3</sup>) to elucidate the mechanism of oxidation kinetics of the ANPs and to study the oxidation states in the oxide layer. Our result shows that the mechanism of the oxidation of the ANPs is as follows: hot-spots and high-temperature areas are created by adsorption and dissociation of oxygen molecules on the surface of the ANPs; void spaces are generated because of hot-spots and high-temperature areas; the void spaces significantly lower a reaction barrier for oxygen diffusion (by up to 92%) and make this process exo...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
Ignition and combustion of Aluminum nanoparticles (ANPs) under complex environments are of great sig...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
The oxidation mechanisms of core-shell aluminum nanoparticles (ANPs) in high-temperature steam and o...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
The oxidation of aluminum nanoparticles is studied with classical molecular dynamics and the Streitz...
UnrestrictedThis dissertation uses multi-million atom molecular dynamics simulations to determine th...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Oxidation of an aluminum nanocluster (252,158 atoms) of radius 100{angstrom} placed in gaseous oxyge...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
Ignition and combustion of Aluminum nanoparticles (ANPs) under complex environments are of great sig...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
The oxidation mechanisms of core-shell aluminum nanoparticles (ANPs) in high-temperature steam and o...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
This study employed the reactive force field molecular dynamics to capture atomic-level heat and mas...
The oxidation of aluminum nanoparticles is studied with classical molecular dynamics and the Streitz...
UnrestrictedThis dissertation uses multi-million atom molecular dynamics simulations to determine th...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Metal nanoparticles usually show different oxidation dynamics from bulk metals, which results in var...
Oxidation of an aluminum nanocluster (252,158 atoms) of radius 100{angstrom} placed in gaseous oxyge...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
To prompt the application of aluminum nanoparticles (ANPs) in combustion as the fuel additive and in...
Ignition and combustion of Aluminum nanoparticles (ANPs) under complex environments are of great sig...