Literature DB >> 18198706

Thermal impact of an active 3-D microelectrode array implanted in the brain.

Sohee Kim1, Prashant Tathireddy, Richard A Normann, Florian Solzbacher.   

Abstract

A chronically implantable, wireless neural interface device will require integrating electronic circuitry with the interfacing microelectrodes in order to eliminate wired connections. Since the integrated circuit (IC) dissipates a certain amount of power, it will raise the temperature in surrounding tissues where it is implanted. In this paper, the thermal influence of the integrated 3-D Utah electrode array (UEA) device implanted in the brain was investigated by numerical simulation using finite element analysis (FEA) and by experimental measurement in vitro as well as in vivo. The numerically calculated and experimentally measured temperature increases due to the UEA implantation were in good agreement. The experimentally validated numerical model predicted that the temperature increases linearly with power dissipation through the UEA, with a slope of 0.029 degree C/mW over the power dissipation levels expected to be used. The influences of blood perfusion, brain metabolism, and UEA geometry on tissue heating were also investigated using the numerical model.

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Year:  2007        PMID: 18198706     DOI: 10.1109/TNSRE.2007.908429

Source DB:  PubMed          Journal:  IEEE Trans Neural Syst Rehabil Eng        ISSN: 1534-4320            Impact factor:   3.802


  25 in total

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4.  A Power-Efficient Wireless System With Adaptive Supply Control for Deep Brain Stimulation.

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5.  Therapeutic hypothermia reduces cortical inflammation associated with utah array implants.

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7.  Wireless neural recording with single low-power integrated circuit.

Authors:  Reid R Harrison; Ryan J Kier; Cynthia A Chestek; Vikash Gilja; Paul Nuyujukian; Stephen Ryu; Bradley Greger; Florian Solzbacher; Krishna V Shenoy
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2009-06-02       Impact factor: 3.802

8.  A Brain-Machine Interface Operating with a Real-Time Spiking Neural Network Control Algorithm.

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Journal:  Adv Neural Inf Process Syst       Date:  2011

9.  Tissue Variability and Antennas for Power Transfer to Wireless Implantable Medical Devices.

Authors:  Kara N Bocan; Marlin H Mickle; Ervin Sejdic
Journal:  IEEE J Transl Eng Health Med       Date:  2017-08-09       Impact factor: 3.316

10.  Design and validation of a real-time spiking-neural-network decoder for brain-machine interfaces.

Authors:  Julie Dethier; Paul Nuyujukian; Stephen I Ryu; Krishna V Shenoy; Kwabena Boahen
Journal:  J Neural Eng       Date:  2013-04-10       Impact factor: 5.379

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