Chemically doped graphene-based materials have recently been explored as a means to improve the performance of supercapacitors. In this work, we investigate the effects of 3d transition metals bound to vacancy sites in graphene with [BMIM][PF<sub>6</sub>] ionic liquid on the interfacial capacitance; these results are compared to the pristine graphene case with particular attention to the relative contributions of the quantum and electric double layer capacitances. Our study highlights that the presence of metal-vacancy complexes significantly increases the availability of electronic states near the charge neutrality point, thereby enhancing the quantum capacitance drastically. In addition, the use of metal-doped graphene electrodes is foun...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Ionic-liquid gates have a high carrier density due to their atomically thin electric double layer (E...
Graphene has been heralded as a promising electrode material for high energy and power density elect...
Graphene-based electrodes have been widely tested and used in electrochemical double layer capacitor...
Application of the functionalized graphene as electrode for supercapacitor has received a lot of att...
Ionic-liquid gates have a high carrier density due to their atomically thin electric double layer (E...
With first-principles density functional theory calculations, we demonstrate that quantum capacitanc...
Understanding and controlling the electrical response at a complex electrode–electrolyte interface i...
Using density-functional theory calculations on a variety of model surfaces, we demonstrate that the...
© 2002-2012 IEEE. Despite having remarkable surface area (2630 m2/g for graphene), the graphene-base...
Low-energy density has long been the major limitation to the application of supercapacitors. Introdu...
Low-energy density has long been the major limitation to the application of supercapacitors. Introdu...
The quantum capacitance model based on graphene’s fixed-band density of states (DOS) is one of the m...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
885-891Electrodes fabricated using graphene are quite promising for electric double layer capacitors...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Ionic-liquid gates have a high carrier density due to their atomically thin electric double layer (E...
Graphene has been heralded as a promising electrode material for high energy and power density elect...
Graphene-based electrodes have been widely tested and used in electrochemical double layer capacitor...
Application of the functionalized graphene as electrode for supercapacitor has received a lot of att...
Ionic-liquid gates have a high carrier density due to their atomically thin electric double layer (E...
With first-principles density functional theory calculations, we demonstrate that quantum capacitanc...
Understanding and controlling the electrical response at a complex electrode–electrolyte interface i...
Using density-functional theory calculations on a variety of model surfaces, we demonstrate that the...
© 2002-2012 IEEE. Despite having remarkable surface area (2630 m2/g for graphene), the graphene-base...
Low-energy density has long been the major limitation to the application of supercapacitors. Introdu...
Low-energy density has long been the major limitation to the application of supercapacitors. Introdu...
The quantum capacitance model based on graphene’s fixed-band density of states (DOS) is one of the m...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
885-891Electrodes fabricated using graphene are quite promising for electric double layer capacitors...
Quantum capacitance (QC) is a very important character of the graphene cathode in lithium ion capaci...
Ionic-liquid gates have a high carrier density due to their atomically thin electric double layer (E...
Graphene has been heralded as a promising electrode material for high energy and power density elect...