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  4. Changes Over Time in the Electrode/Brain Interface Impedance: An Ex-Vivo Study
 
research article

Changes Over Time in the Electrode/Brain Interface Impedance: An Ex-Vivo Study

Iannucci, Leonardo
•
Barbruni, Gian Luca  
•
Ghezzi, Diego  
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June 1, 2023
Ieee Transactions On Biomedical Circuits And Systems

Closed-loop neural implants based on continuous brain activity recording and intracortical microstimulation are extremely effective and promising devices to monitor and address many neurodegenerative diseases. The efficiency of these devices depends on the robustness of the designed circuits which rely on precise electrical equivalent models of the electrode/brain interface. This is true in the case of amplifiers for differential recording, voltage or current drivers for neurostimulation, and potentiostats for electrochemical bio-sensing. This is of paramount importance, especially for the next generation of wireless and ultra-miniaturised CMOS neural implants. Circuits are usually designed and optimized considering the electrode/brain impedance with a simple electrical equivalent model whose parameters are stationary over time. However, the electrode/brain interfacial impedance varies simultaneously in frequency and in time after implantation. The aim of this study is to monitor the impedance changes occurring on microelectrodes inserted in ex-vivo porcine brains to derive an opportune electrode/brain model describing the system and its evolution in time. In particular, impedance spectroscopy measurements have been performed for 144 hours to characterise the evolution of the electrochemical behaviour in two different setups analysing both the neural recording and the chronic stimulation scenarios. Then, different equivalent electrical circuit models have been proposed to describe the system. Results showed a decrease in the resistance to charge transfer, attributed to the interaction between biological material and the electrode surface. These findings are crucial to support circuit designers in the field of neural implants.

  • Details
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Type
research article
DOI
10.1109/TBCAS.2023.3284691
Web of Science ID

WOS:001029019800009

Author(s)
Iannucci, Leonardo
Barbruni, Gian Luca  
Ghezzi, Diego  
Parvis, Marco
Grassini, Sabrina
Carrara, Sandro  
Date Issued

2023-06-01

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC

Published in
Ieee Transactions On Biomedical Circuits And Systems
Volume

17

Issue

3

Start page

495

End page

506

Subjects

Engineering, Biomedical

•

Engineering, Electrical & Electronic

•

Engineering

•

electrode/brain interface

•

electrochemical impedance spectroscopy

•

electrical equivalent circuit

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micro-electrodes

•

closed-loop neural implants

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neural recording

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neurostimulation

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electrical circuit

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neurostimulation

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array

•

fluid

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

Available on Infoscience
August 28, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/200165
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