Title :
Bio-impedance characterization technique with implantable neural stimulator using biphasic current stimulus
Author :
Yi-Kai Lo ; Chih-Wei Chang ; Wentai Liu
Author_Institution :
Univ. of California, Los Angeles, Los Angeles, CA, USA
Abstract :
Knowledge of the bio-impedance and its equivalent circuit model at the electrode-electrolyte/tissue interface is important in the application of functional electrical stimulation. Impedance can be used as a merit to evaluate the proximity between electrodes and targeted tissues. Understanding the equivalent circuit parameters of the electrode can further be leveraged to set a safe boundary for stimulus parameters in order not to exceed the water window of electrodes. In this paper, we present an impedance characterization technique and implement a proof-of-concept system using an implantable neural stimulator and an off-the-shelf microcontroller. The proposed technique yields the parameters of the equivalent circuit of an electrode through large signal analysis by injecting a single low-intensity biphasic current stimulus with deliberately inserted inter-pulse delay and by acquiring the transient electrode voltage at three well-specified timings. Using low-intensity stimulus allows the derivation of electrode double layer capacitance since capacitive charge-injection dominates when electrode overpotential is small. Insertion of the inter-pulse delay creates a controlled discharge time to estimate the Faradic resistance. The proposed method has been validated by measuring the impedance of a) an emulated Randles cells made of discrete circuit components and b) a custom-made platinum electrode array in-vitro, and comparing estimated parameters with the results derived from an impedance analyzer. The proposed technique can be integrated into implantable or commercial neural stimulator system at low extra power consumption, low extra-hardware cost, and light computation.
Keywords :
bioelectric potentials; biological tissues; biomedical electrodes; delays; electric impedance measurement; electric resistance; electrolytes; neurophysiology; parameter estimation; patient treatment; platinum; Faradic resistance estimation; Pt; bioimpedance characterization technique; capacitive charge-injection; discrete circuit components; electrode double layer capacitance; equivalent circuit parameter estimation; functional electrical stimulation application; implantable neural stimulator system; interpulse delay insertion; low-intensity biphasic current stimulus; low-intensity stimulus; off-the-shelf microcontroller; platinium electrode-electrolyte-tissue interface; transient electrode voltage acquisition; water window; Biomedical measurement; Current measurement; Delays; Electrodes; Equivalent circuits; Impedance; Voltage measurement;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6943631