Title :
Quantifying the effects of material property frequency dispersion in volume conductor models of deep brain stimulation
Author :
Grant, P.F. ; Lowery, M.M.
Abstract :
The aim of this study was to examine and quantify the effect of frequency dispersion in the electrical conductivity and relative permittivity of the isotropic brain tissue on the electric potential distribution due to deep brain stimulation. A finite element model was used to determine the transfer function between the stimulus and the voltage estimated at the location of a neuron in the surrounding tissue. Isotropic brain tissue was represented using resistive, capacitive and dispersive formulations. Constant current and constant voltage stimuli were examined, using direct, capacitive and double-layer electrode coupling. Non-dispersive capacitive solutions were found to exhibit higher root mean square errors relative to fully dispersive solutions than purely resistive solutions under constant current and constant voltage stimulation. It is concluded that to fully capture the capacitive effects the frequency dependent electrical conductivity and relative permittivity should be explicitly incorporated into capacitive bulk tissue models.
Keywords :
bioelectric potentials; biomedical electrodes; brain models; electrical conductivity; finite element analysis; neurophysiology; patient treatment; permittivity; transfer functions; deep brain stimulation; direct capacitive double-layer electrode coupling; electric potential distribution; electrical conductivity; finite element model; isotropic brain tissue; material property frequency dispersion; relative permittivity; root mean square errors; stimulus; transfer function; volume conductor models; Deep brain stimulation; dielectric dispersion; finite element model;
Conference_Titel :
Signals and Systems Conference (ISSC 2009), IET Irish
Conference_Location :
Dublin
DOI :
10.1049/cp.2009.1717