Title :
Redundant safety features in a high-channel-count retinal neurostimulator
Author :
Kelly, Shawn K. ; Doyle, Patrick ; Ellersick, William F. ; Shire, Douglas B. ; Krishnan, Arjun ; Wyatt, John L. ; Rizzo, Joseph F.
Author_Institution :
Dept. of Veterans Affairs, Carnegie Mellon Univ., Pittsburgh, PA, USA
Abstract :
Safety features embedded in a 256-channel retinal prosthesis integrated circuit are presented. The biology of the retina and the electrochemistry of the electrode-tissue interface demand careful planning and design of the safety features of an implantable retinal stimulation device. We describe the internal limits and communication safety features of our ASIC, but we focus on monitoring and protection circuits for the electrode-tissue interface. Two independent voltage monitoring circuits for each channel measure the electrode polarization voltage at two different times in the biphasic stimulation cycle. The monitors ensure that the charged electrode stays within the electrochemical water window potentials, and that the discharged electrode is within a small window near the counter electrode potential. A switch to connect each electrode to the counter electrode between pulses protects against a wide range of device failures. Additionally, we describe work on an active feedback system to ensure that the electrode voltage is at zero.
Keywords :
application specific integrated circuits; biochemistry; bioelectric potentials; biological tissues; biomedical electrodes; biomedical electronics; biomedical measurement; electrochemistry; eye; feedback; integrated circuit design; medical control systems; neurophysiology; patient monitoring; prosthetics; safety; voltage measurement; 256-channel retinal prosthesis integrated circuit; ASIC; active feedback system; biphasic stimulation cycle time; communication safety feature; counter electrode potential; device failure; discharged electrode; electrochemical water window potential; electrochemistry; electrode charging; electrode polarization voltage measurement; electrode switch; electrode voltage; electrode-tissue interface; high-channel-count retinal neurostimulator; implantable retinal stimulation device; independent voltage monitoring circuit; internal limit; protection circuit; redundant safety feature; safety feature design; safety feature planning; sfety feature embedding; Application specific integrated circuits; Electrodes; Implants; Monitoring; Prosthetics; Retina; Safety; Biomedical engineering; biomedical electrodes; integrated circuit design; retinal implant; retinal prosthesis;
Conference_Titel :
Biomedical Circuits and Systems Conference (BioCAS), 2014 IEEE
Conference_Location :
Lausanne
DOI :
10.1109/BioCAS.2014.6981701