Graphene oxide nanowalls with extremely sharp edges and preferred vertical orientation were deposited on a graphite electrode by using electrophoretic deposition in an Mg<sup>2+</sup>-GO electrolyte. Using differential pulse voltammetry (DPV), reduced graphene nanowalls (RGNWs) were applied for the first time, in developing an ultra-high-resolution electrochemical biosensor for detection of the four bases of DNA (G, A, T, and C) by monitoring the oxidation signals of the individual nucleotide bases. The extremely enhanced electrochemical reactivity of the four free bases of DNA, single-stranded DNA, and double-stranded DNA (dsDNA) at the surface of the RGNW electrode was compared to electrochemical performances of reduced graphene nanosheet...
There is an emerging interest in developing electrochemical DNA biosensors which rely on label-free ...
Recent efforts toward the development of electrochemical biosensors have emphasized the incorporatio...
WOS: 000418409800082Continuous technology miniaturization using nanoscale materials allows the desig...
A novel printed graphene electrode modified with electrochemically reduced graphene oxide was develo...
We have investigated the influence exerted by the concentration of graphene oxide (GO) dispersion as...
WOS: 000396946600030PubMed ID: 28214748Recently, the low-cost effective biosensing systems based on ...
DNA is strongly adsorbed on oxidized graphene surfaces in the presence of divalent cations. Here, we...
Graphene and its derivatives have been a focus of research for a number of years due to their enhanc...
Since the discovery of graphene, and due to its unique properties, we have witnessed a growing inter...
An ultrasensitive DNA biosensor was constructed in this work by using graphene oxide nanosheets (GON...
The unique structural and electrochemical properties of graphene oxide (GO) make it an ideal materia...
We report here a successful multiplex DNA targets biosensor using reduced graphene oxide modified gl...
Vertical graphene nanoflake integrated films having a high density of edge planes have been used as ...
Vertical graphene nanoflake integrated films having a high density of edge planes have been used as ...
A glassy carbon electrode (GCE) was modified by electrochemically reduced graphene oxide (ERGO) for ...
There is an emerging interest in developing electrochemical DNA biosensors which rely on label-free ...
Recent efforts toward the development of electrochemical biosensors have emphasized the incorporatio...
WOS: 000418409800082Continuous technology miniaturization using nanoscale materials allows the desig...
A novel printed graphene electrode modified with electrochemically reduced graphene oxide was develo...
We have investigated the influence exerted by the concentration of graphene oxide (GO) dispersion as...
WOS: 000396946600030PubMed ID: 28214748Recently, the low-cost effective biosensing systems based on ...
DNA is strongly adsorbed on oxidized graphene surfaces in the presence of divalent cations. Here, we...
Graphene and its derivatives have been a focus of research for a number of years due to their enhanc...
Since the discovery of graphene, and due to its unique properties, we have witnessed a growing inter...
An ultrasensitive DNA biosensor was constructed in this work by using graphene oxide nanosheets (GON...
The unique structural and electrochemical properties of graphene oxide (GO) make it an ideal materia...
We report here a successful multiplex DNA targets biosensor using reduced graphene oxide modified gl...
Vertical graphene nanoflake integrated films having a high density of edge planes have been used as ...
Vertical graphene nanoflake integrated films having a high density of edge planes have been used as ...
A glassy carbon electrode (GCE) was modified by electrochemically reduced graphene oxide (ERGO) for ...
There is an emerging interest in developing electrochemical DNA biosensors which rely on label-free ...
Recent efforts toward the development of electrochemical biosensors have emphasized the incorporatio...
WOS: 000418409800082Continuous technology miniaturization using nanoscale materials allows the desig...