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Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography

The detection of quantal exocytic events from neurons and neuroendocrine cells is a challenging task in neuroscience. One of the most promising platforms for the development of a new generation of biosensors is diamond, due to its biocompatibility, transparency and chemical inertness. Moreover, the...

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Autores principales: Picollo, Federico, Battiato, Alfio, Carbone, Emilio, Croin, Luca, Enrico, Emanuele, Forneris, Jacopo, Gosso, Sara, Olivero, Paolo, Pasquarelli, Alberto, Carabelli, Valentina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4327033/
https://www.ncbi.nlm.nih.gov/pubmed/25558992
http://dx.doi.org/10.3390/s150100515
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author Picollo, Federico
Battiato, Alfio
Carbone, Emilio
Croin, Luca
Enrico, Emanuele
Forneris, Jacopo
Gosso, Sara
Olivero, Paolo
Pasquarelli, Alberto
Carabelli, Valentina
author_facet Picollo, Federico
Battiato, Alfio
Carbone, Emilio
Croin, Luca
Enrico, Emanuele
Forneris, Jacopo
Gosso, Sara
Olivero, Paolo
Pasquarelli, Alberto
Carabelli, Valentina
author_sort Picollo, Federico
collection PubMed
description The detection of quantal exocytic events from neurons and neuroendocrine cells is a challenging task in neuroscience. One of the most promising platforms for the development of a new generation of biosensors is diamond, due to its biocompatibility, transparency and chemical inertness. Moreover, the electrical properties of diamond can be turned from a perfect insulator into a conductive material (resistivity ∼mΩ·cm) by exploiting the metastable nature of this allotropic form of carbon. A 16-channels MEA (Multi Electrode Array) suitable for cell culture growing has been fabricated by means of ion implantation. A focused 1.2 MeV He(+) beam was scanned on a IIa single-crystal diamond sample (4.5 × 4.5 × 0.5 mm(3)) to cause highly damaged sub-superficial structures that were defined with micrometric spatial resolution. After implantation, the sample was annealed. This process provides the conversion of the sub-superficial highly damaged regions to a graphitic phase embedded in a highly insulating diamond matrix. Thanks to a three-dimensional masking technique, the endpoints of the sub-superficial channels emerge in contact with the sample surface, therefore being available as sensing electrodes. Cyclic voltammetry and amperometry measurements of solutions with increasing concentrations of adrenaline were performed to characterize the biosensor sensitivity. The reported results demonstrate that this new type of biosensor is suitable for in vitro detection of catecholamine release.
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spelling pubmed-43270332015-02-23 Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography Picollo, Federico Battiato, Alfio Carbone, Emilio Croin, Luca Enrico, Emanuele Forneris, Jacopo Gosso, Sara Olivero, Paolo Pasquarelli, Alberto Carabelli, Valentina Sensors (Basel) Article The detection of quantal exocytic events from neurons and neuroendocrine cells is a challenging task in neuroscience. One of the most promising platforms for the development of a new generation of biosensors is diamond, due to its biocompatibility, transparency and chemical inertness. Moreover, the electrical properties of diamond can be turned from a perfect insulator into a conductive material (resistivity ∼mΩ·cm) by exploiting the metastable nature of this allotropic form of carbon. A 16-channels MEA (Multi Electrode Array) suitable for cell culture growing has been fabricated by means of ion implantation. A focused 1.2 MeV He(+) beam was scanned on a IIa single-crystal diamond sample (4.5 × 4.5 × 0.5 mm(3)) to cause highly damaged sub-superficial structures that were defined with micrometric spatial resolution. After implantation, the sample was annealed. This process provides the conversion of the sub-superficial highly damaged regions to a graphitic phase embedded in a highly insulating diamond matrix. Thanks to a three-dimensional masking technique, the endpoints of the sub-superficial channels emerge in contact with the sample surface, therefore being available as sensing electrodes. Cyclic voltammetry and amperometry measurements of solutions with increasing concentrations of adrenaline were performed to characterize the biosensor sensitivity. The reported results demonstrate that this new type of biosensor is suitable for in vitro detection of catecholamine release. MDPI 2014-12-30 /pmc/articles/PMC4327033/ /pubmed/25558992 http://dx.doi.org/10.3390/s150100515 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Picollo, Federico
Battiato, Alfio
Carbone, Emilio
Croin, Luca
Enrico, Emanuele
Forneris, Jacopo
Gosso, Sara
Olivero, Paolo
Pasquarelli, Alberto
Carabelli, Valentina
Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title_full Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title_fullStr Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title_full_unstemmed Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title_short Development and Characterization of a Diamond-Insulated Graphitic Multi Electrode Array Realized with Ion Beam Lithography
title_sort development and characterization of a diamond-insulated graphitic multi electrode array realized with ion beam lithography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4327033/
https://www.ncbi.nlm.nih.gov/pubmed/25558992
http://dx.doi.org/10.3390/s150100515
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