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In this work, we report the modification of a gold electrode with undoped diamond nanoparticles (DNPs) and its applicability to the fabrication of electrochemical biosensing platforms. DNPs were immobilized onto a gold electrode by direct adsorption and the electrochemical behavior of the resulting DNPs/Au platform was studied. Four well-defined peaks were observed corresponding to the DNPs oxidation/reduction at the underlying gold electrode, which demonstrate that, although undoped DNPs have an insulating character, they show electrochemical activity as a consequence of the presence of different functionalities with unsaturated bonding on their surface. In order to develop a DNPs-based biosensing platform, we have selected glucose oxidase (GOx), as a model enzyme. We have performed an exhaustive study of the different steps involved in the biosensing platform preparation (DNPs/Au and GOx/DNPs/Au systems) by atomic force microscopy (AFM), field emission scanning electron microscopy (FE-SEM) and cyclic voltammetry (CV). The glucose biosensor shows a good electrocatalytic response in the presence of (hydroxymethyl)ferrocene as redox mediator. Once the suitability of the prototype system to determine glucose was verified, in a second step, we prepared a similar biosensor, but employing the enzyme lactate oxidase (LOx/DNPs/Au). As far as we know, this is the first electrochemical biosensor for lactate determination that includes DNPs as nanomaterial. A linear concentration range from 0.05 mM to 0.7 mM, a sensitivity of 4.0 µA mM(-1) and a detection limit of 15 µM were obtained.
Diamond nanoparticles, Biosensing Techniques, Electrochemical Techniques, Enzymes, Immobilized, Microscopy, Atomic Force, Glucose biosensor, Lactate biosensor, Atomic force microscopy, Glucose Oxidase, Glucose, Microscopy, Electron, Scanning, Gold, Lactic Acid, Electrochemical techniques
Diamond nanoparticles, Biosensing Techniques, Electrochemical Techniques, Enzymes, Immobilized, Microscopy, Atomic Force, Glucose biosensor, Lactate biosensor, Atomic force microscopy, Glucose Oxidase, Glucose, Microscopy, Electron, Scanning, Gold, Lactic Acid, Electrochemical techniques
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