With first-principles density functional theory calculations, we demonstrate that quantum capacitance of graphene-based electrodes can be improved by the N-doping, vacancy defects, and adsorbed transition-metal atoms. The enhancement of the quantum capacitance can be contributed to the formation of localized states near Dirac point and/or shift of Fermi level induced by the defects and doping. In addition, the quantum capacitance is found to increase monotonically following the increase of defect concentrations. It is also found that the localized states near Fermi level results in the spin-polarization effect
Many researchers have used nitrogen (N) as a dopant and/or N-containing functional groups to enhance...
Graphene-based electrodes have been widely tested and used in electrochemical double layer capacitor...
The quantum capacitance model based on graphene’s fixed-band density of states (DOS) is one of the m...
© 2002-2012 IEEE. Despite having remarkable surface area (2630 m2/g for graphene), the graphene-base...
Application of the functionalized graphene as electrode for supercapacitor has received a lot of att...
885-891Electrodes fabricated using graphene are quite promising for electric double layer capacitors...
Density functional calculations were performed on 15 functionalized graphene models to investigate t...
Using density-functional theory calculations on a variety of model surfaces, we demonstrate that the...
Chemically doped graphene-based materials have recently been explored as a means to improve the perf...
The talk presented at 29th Annual General Meeting Of Materials Research Society Of India And Nationa...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Silicene with a buckled atomic layer has double surfaces with a high surface/volume ratio similar to...
Because of their many advantages, graphene and graphene-based materials are used in supercapacitor e...
Quantum capacitance of graphene plays a significant role for graphene's applications in electrochemi...
Many researchers have used nitrogen (N) as a dopant and/or N-containing functional groups to enhance...
Graphene-based electrodes have been widely tested and used in electrochemical double layer capacitor...
The quantum capacitance model based on graphene’s fixed-band density of states (DOS) is one of the m...
© 2002-2012 IEEE. Despite having remarkable surface area (2630 m2/g for graphene), the graphene-base...
Application of the functionalized graphene as electrode for supercapacitor has received a lot of att...
885-891Electrodes fabricated using graphene are quite promising for electric double layer capacitors...
Density functional calculations were performed on 15 functionalized graphene models to investigate t...
Using density-functional theory calculations on a variety of model surfaces, we demonstrate that the...
Chemically doped graphene-based materials have recently been explored as a means to improve the perf...
The talk presented at 29th Annual General Meeting Of Materials Research Society Of India And Nationa...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Silicene with a buckled atomic layer has double surfaces with a high surface/volume ratio similar to...
Because of their many advantages, graphene and graphene-based materials are used in supercapacitor e...
Quantum capacitance of graphene plays a significant role for graphene's applications in electrochemi...
Many researchers have used nitrogen (N) as a dopant and/or N-containing functional groups to enhance...
Graphene-based electrodes have been widely tested and used in electrochemical double layer capacitor...
The quantum capacitance model based on graphene’s fixed-band density of states (DOS) is one of the m...