Title :
Highly Doped Polycrystalline Silicon Microelectrodes Reduce Noise in Neuronal Recordings In Vivo
Author :
Saha, Rajarshi ; Jackson, Nathan ; Patel, Chetan ; Muthuswamy, Jit
Author_Institution :
Dept. of Electr. Eng., Arizona State Univ., Tempe, AZ, USA
Abstract :
The aims of this study are to 1) experimentally validate for the first time the nonlinear current-potential characteristics of bulk doped polycrystalline silicon in the small amplitude voltage regimes (0-200 ) and 2) test if noise amplitudes ( 0-15 ) from single neuronal electrical recordings get selectively attenuated in doped polycrystalline silicon microelectrodes due to the above property. In highly doped polycrystalline silicon, bulk resistances of several hundred kilo-ohms were experimentally measured for voltages typical of noise amplitudes and 9-10 k for voltages typical of neural signal amplitudes (> 150-200 ). Acute multiunit measurements and noise measurements were made in n = 6 and n = 8 anesthetized adult rats, respectively, using polycrystalline silicon and tungsten microelectrodes. There was no significant difference in the peak-to-peak amplitudes of action potentials recorded from either microelectrode (p > 0.10). However, noise power in the recordings from tungsten microelectrodes (26.36 ±10.13 pW) was significantly higher (p <;; 0.001) than the corresponding value in polycrystalline silicon microelectrodes (7.49 ± 2.66 pW). We conclude that polycrystalline silicon microelectrodes result in selective attenuation of noise power in electrical recordings compared to tungsten microelectrodes. This reduction in noise compared to tungsten microelectrodes is likely due to the exponentially higher bulk resistances offered by highly doped bulk polycrystalline silicon in the range of voltages corresponding to noise in multiunit measurements.
Keywords :
bioelectric potentials; biomedical electrodes; brain; elemental semiconductors; interference suppression; microelectrodes; neurophysiology; prosthetics; silicon; action potential; acute multiunit measurement; anesthetized adult rat; bulk resistance; highly doped polycrystalline silicon microelectrode; in vivo neuronal recording; neural signal amplitude; noise amplitude; noise measurement; noise power; nonlinear current-potential characteristic; peak-to-peak amplitude; selective attenuation; single neuronal electrical recording; small amplitude voltage regime; tungsten microelectrode; Electrical resistance measurement; In vivo; Microelectrodes; Noise level; Noise measurement; Noise reduction; Silicon; Testing; Tungsten; Voltage; Brain implants; brain prosthesis; brain–machine interface; neural prostheses; Action Potentials; Animals; Artifacts; Brain; Crystallization; Electric Conductivity; Electrodes, Implanted; Equipment Design; Equipment Failure Analysis; Microelectrodes; Neurons; Rats; Rats, Wistar; Sensitivity and Specificity; Silicon;
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
DOI :
10.1109/TNSRE.2010.2056389