DocumentCode :
6954
Title :
Analysis of Electromagnetic Fields Induced in Operation of a Wireless Fully Passive Backscattering Neurorecording Microsystem in Emulated Human Head Tissue
Author :
Schwerdt, Helen N. ; Miranda, F.A. ; Junseok Chae
Author_Institution :
Dept. of Electr. Eng., Arizona State Univ., Tempe, AZ, USA
Volume :
61
Issue :
5
fYear :
2013
fDate :
May-13
Firstpage :
2170
Lastpage :
2176
Abstract :
This paper reports on a fully passive microsystem that wirelessly records and transmits neuropotentials exclusively by means of electromagnetic backscattering techniques, affording substantially simpler circuitry and potentially safer and more reliable approach for implantable wireless neurorecording. A fundamental practical barrier for wireless brain-implantable microsystems includes heat dissipation by on-chip circuitry, which may cause permanent brain damage. Hence, measurement of thermal profiles of surrounding tissue induced by operation of wireless implants is imperative in assessing the safety of these devices. Evaluation of specific absorption rate (SAR) is especially relevant for wireless electromagnetic transmission schemes operating at microwave frequencies and directly relates to the heat generated within biological tissue media. In this study, computational and empirical methods are used to measure SAR within a human-head-equivalent phantom during operation of the embedded fully passive wireless neurorecording microsystem. The maximum average SAR, coinciding with the worst case scenario, measured within 1 g of brain tissue is <; 0.45±0.11 W/kg, complying with the U.S. FCC threshold (1.6 W/kg).
Keywords :
bioMEMS; bioelectric potentials; biological effects of fields; biological tissues; biomedical measurement; biothermics; brain; neurophysiology; personal area networks; phantoms; computational methods; device safety; electromagnetic backscattering technique; electromagnetic fields; empirical methods; emulated human head tissue; fully passive microsystem; heat dissipation; human-head-equivalent phantom; implantable wireless neurorecording; neuropotentials; on-chip circuitry; permanent brain damage; specific absorption rate; thermal profile measurement; wireless brain-implantable microsystems; wireless electromagnetic transmission schemes; wireless fully passive backscattering neurorecording microsystem; Backscattering; brain–machine interfaces; implantable electronics; microelectromechanical systems (MEMS); passive devices; specific absorption rate (SAR);
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2013.2252916
Filename :
6493470
Link To Document :
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