As a new form of carbon, graphene is attracting intense interest as an electrode material with widespread applications. In the present study, the heterogeneous electron transfer (ET) activity of graphene is investigated using scanning electrochemical cell microscopy (SECCM), which allows electrochemical currents to be mapped at high spatial resolution across a surface for correlation with the corresponding structure and properties of the graphene surface. We establish that the rate of heterogeneous ET at graphene increases systematically with the number of graphene layers, and show that the stacking in multilayers also has a subtle influence on ET kinetics. © 2012 American Chemical Society
Mono-, few-, and multilayer graphene is explored towards the electrochemical Hydrogen Evolution Reac...
This paper describes the heterogeneous electron transfer (ET) properties of high-quality multilayer ...
Graphene is the name given to a monolayer of carbon atoms that are tightly packed into a two-dimensi...
As a new form of carbon, graphene is attracting intense interest as an electrode material with wides...
Graphene, a single layer of carbon atoms, has been in the center stage of materials research since i...
The structure of vertically aligned graphene electrodes is shown to directly affect heterogeneous el...
AbstractA micromanipulator combined with a microinjection system was employed to inject micro-drople...
We report the electrochemical properties of pristine monolayer, double layer and few-layer (termed q...
This paper describes the heterogeneous electron transfer (ET) properties of high-quality multilayer ...
Conducting carbon materials: A multi-microscopy approach shows that local heterogeneous electron-tra...
2D electrode materials are often deployed on conductive supports for electrochemistry and there is a...
After all, it's active: High-resolution scanning electrochemical cell microscopy (SECCM) demonstrate...
Graphene has a unique atom-thick two-dimensional structure and excellent properties, making it attra...
[EN] Graphene and related materials have recently emerged as outstanding materials due to a range of...
© 2019 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim Mono-, few- and multi- layer graphene is explored ...
Mono-, few-, and multilayer graphene is explored towards the electrochemical Hydrogen Evolution Reac...
This paper describes the heterogeneous electron transfer (ET) properties of high-quality multilayer ...
Graphene is the name given to a monolayer of carbon atoms that are tightly packed into a two-dimensi...
As a new form of carbon, graphene is attracting intense interest as an electrode material with wides...
Graphene, a single layer of carbon atoms, has been in the center stage of materials research since i...
The structure of vertically aligned graphene electrodes is shown to directly affect heterogeneous el...
AbstractA micromanipulator combined with a microinjection system was employed to inject micro-drople...
We report the electrochemical properties of pristine monolayer, double layer and few-layer (termed q...
This paper describes the heterogeneous electron transfer (ET) properties of high-quality multilayer ...
Conducting carbon materials: A multi-microscopy approach shows that local heterogeneous electron-tra...
2D electrode materials are often deployed on conductive supports for electrochemistry and there is a...
After all, it's active: High-resolution scanning electrochemical cell microscopy (SECCM) demonstrate...
Graphene has a unique atom-thick two-dimensional structure and excellent properties, making it attra...
[EN] Graphene and related materials have recently emerged as outstanding materials due to a range of...
© 2019 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim Mono-, few- and multi- layer graphene is explored ...
Mono-, few-, and multilayer graphene is explored towards the electrochemical Hydrogen Evolution Reac...
This paper describes the heterogeneous electron transfer (ET) properties of high-quality multilayer ...
Graphene is the name given to a monolayer of carbon atoms that are tightly packed into a two-dimensi...