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  4. Fabrication and electrochemical characterization of ruthenium nanoelectrodes
 
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2017
Journal Article
Title

Fabrication and electrochemical characterization of ruthenium nanoelectrodes

Abstract
The Fraunhofer IMS has recently developed a technique for producing nanoelectrodes that are generated by atomic layer deposition (ALD) in a via deep reactive ion etching (DRIE) structured sacrificial layer. This method enables the fabrication of CMOS- and biocompatible nanoelectrodes with suitable ALD-materials. Improvements of the established fabrication processes and the electrochemical characterization of such electrodes are presented. In the frame of the Fraunhofer-Max-Planck cooperation project ZellMOS different types of nanoelectrodes are studied. Their diameter is in the range of 200 nm and thereby sufficiently small to be taken up by living cells. In addition, the electrodes are mechanically enforced by an oxide layer at the nanoelectrodes' bottom.
Author(s)
Allani, Sonja
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Jupe, Andreas
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Figge, Martin  
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Goehlich, Andreas
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Vogt, Holger
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Journal
Current directions in biomedical engineering  
Open Access
DOI
10.1515/cdbme-2017-0082
Additional link
Full text
Language
English
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Keyword(s)
  • Nanoelektrode

  • elektrochemische Charakterisierung

  • atomic layer deposition (ALD)

  • nanoelectrode

  • electrochemical characterization

  • intracellular recording

  • deep reactive ion etching (DRIE)

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