Cargando…

Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology

Recent progress in patterned microelectrode manufacturing technology and microfluidics has opened the way to a large variety of cellular and molecular biosensor-based applications. In this extremely diverse and rapidly expanding landscape, silicon-based technologies occupy a special position, given...

Descripción completa

Detalles Bibliográficos
Autores principales: Kusko, Mihaela, Craciunoiu, Florea, Amuzescu, Bogdan, Halitzchi, Ferdinand, Selescu, Tudor, Radoi, Antonio, Popescu, Marian, Simion, Monica, Bragaru, Adina, Ignat, Teodora
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3571798/
https://www.ncbi.nlm.nih.gov/pubmed/23208555
http://dx.doi.org/10.3390/s121216571
_version_ 1782259207056130048
author Kusko, Mihaela
Craciunoiu, Florea
Amuzescu, Bogdan
Halitzchi, Ferdinand
Selescu, Tudor
Radoi, Antonio
Popescu, Marian
Simion, Monica
Bragaru, Adina
Ignat, Teodora
author_facet Kusko, Mihaela
Craciunoiu, Florea
Amuzescu, Bogdan
Halitzchi, Ferdinand
Selescu, Tudor
Radoi, Antonio
Popescu, Marian
Simion, Monica
Bragaru, Adina
Ignat, Teodora
author_sort Kusko, Mihaela
collection PubMed
description Recent progress in patterned microelectrode manufacturing technology and microfluidics has opened the way to a large variety of cellular and molecular biosensor-based applications. In this extremely diverse and rapidly expanding landscape, silicon-based technologies occupy a special position, given their statute of mature, consolidated, and highly accessible areas of development. Within the present work we report microfabrication procedures and workflows for 3D patterned gold-plated microelectrode arrays (MEA) of different shapes (pyramidal, conical and high aspect ratio), and we provide a detailed characterization of their physical features during all the fabrication steps to have in the end a reliable technology. Moreover, the electrical performances of MEA silicon chips mounted on standardized connector boards via ultrasound wire-bonding have been tested using non-destructive electrochemical methods: linear sweep and cyclic voltammetry, impedance spectroscopy. Further, an experimental recording chamber package suitable for in vitro electrophysiology experiments has been realized using custom-design electronics for electrical stimulus delivery and local field potential recording, included in a complete electrophysiology setup, and the experimental structures have been tested on newborn rat hippocampal slices, yielding similar performance compared to commercially available MEA equipments.
format Online
Article
Text
id pubmed-3571798
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher Molecular Diversity Preservation International (MDPI)
record_format MEDLINE/PubMed
spelling pubmed-35717982013-02-19 Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology Kusko, Mihaela Craciunoiu, Florea Amuzescu, Bogdan Halitzchi, Ferdinand Selescu, Tudor Radoi, Antonio Popescu, Marian Simion, Monica Bragaru, Adina Ignat, Teodora Sensors (Basel) Article Recent progress in patterned microelectrode manufacturing technology and microfluidics has opened the way to a large variety of cellular and molecular biosensor-based applications. In this extremely diverse and rapidly expanding landscape, silicon-based technologies occupy a special position, given their statute of mature, consolidated, and highly accessible areas of development. Within the present work we report microfabrication procedures and workflows for 3D patterned gold-plated microelectrode arrays (MEA) of different shapes (pyramidal, conical and high aspect ratio), and we provide a detailed characterization of their physical features during all the fabrication steps to have in the end a reliable technology. Moreover, the electrical performances of MEA silicon chips mounted on standardized connector boards via ultrasound wire-bonding have been tested using non-destructive electrochemical methods: linear sweep and cyclic voltammetry, impedance spectroscopy. Further, an experimental recording chamber package suitable for in vitro electrophysiology experiments has been realized using custom-design electronics for electrical stimulus delivery and local field potential recording, included in a complete electrophysiology setup, and the experimental structures have been tested on newborn rat hippocampal slices, yielding similar performance compared to commercially available MEA equipments. Molecular Diversity Preservation International (MDPI) 2012-12-03 /pmc/articles/PMC3571798/ /pubmed/23208555 http://dx.doi.org/10.3390/s121216571 Text en © 2012 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/3.0/).
spellingShingle Article
Kusko, Mihaela
Craciunoiu, Florea
Amuzescu, Bogdan
Halitzchi, Ferdinand
Selescu, Tudor
Radoi, Antonio
Popescu, Marian
Simion, Monica
Bragaru, Adina
Ignat, Teodora
Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title_full Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title_fullStr Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title_full_unstemmed Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title_short Design, Fabrication and Characterization of a Low-Impedance 3D Electrode Array System for Neuro-Electrophysiology
title_sort design, fabrication and characterization of a low-impedance 3d electrode array system for neuro-electrophysiology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3571798/
https://www.ncbi.nlm.nih.gov/pubmed/23208555
http://dx.doi.org/10.3390/s121216571
work_keys_str_mv AT kuskomihaela designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT craciunoiuflorea designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT amuzescubogdan designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT halitzchiferdinand designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT selescutudor designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT radoiantonio designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT popescumarian designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT simionmonica designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT bragaruadina designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology
AT ignatteodora designfabricationandcharacterizationofalowimpedance3delectrodearraysystemforneuroelectrophysiology