Title :
An externally head-mounted wireless neural recording device for laboratory animal research and possible human clinical use
Author :
Ming Yin ; Hao Li ; Bull, C. ; Borton, D.A. ; Aceros, J. ; Larson, Lawrence ; Nurmikko, A.V.
Author_Institution :
Sch. of Eng., Brown Univ., Providence, RI, USA
Abstract :
In this paper we present a new type of head-mounted wireless neural recording device in a highly compact package, dedicated for untethered laboratory animal research and designed for future mobile human clinical use. The device, which takes its input from an array of intracortical microelectrode arrays (MEA) has ninety-seven broadband parallel neural recording channels and was integrated on to two custom designed printed circuit boards. These house several low power, custom integrated circuits, including a preamplifier ASIC, a controller ASIC, plus two SAR ADCs, a 3-axis accelerometer, a 48MHz clock source, and a Manchester encoder. Another ultralow power RF chip supports an OOK transmitter with the center frequency tunable from 3GHz to 4GHz, mounted on a separate low loss dielectric board together with a 3V LDO, with output fed to a UWB chip antenna. The IC boards were interconnected and packaged in a polyether ether ketone (PEEK) enclosure which is compatible with both animal and human use (e.g. sterilizable). The entire system consumes 17mA from a 1.2Ahr 3.6V Li-SOCl2 1/2AA battery, which operates the device for more than 2 days. The overall system includes a custom RF receiver electronics which are designed to directly interface with any number of commercial (or custom) neural signal processors for multi-channel broadband neural recording. Bench-top measurements and in vivo testing of the device in rhesus macaques are presented to demonstrate the performance of the wireless neural interface.
Keywords :
accelerometers; amplitude shift keying; application specific integrated circuits; biomedical electrodes; clocks; controllers; low-power electronics; microelectrodes; neurophysiology; preamplifiers; printed circuits; radio receivers; synthetic aperture radar; wireless sensor networks; 3-axis accelerometer; IC board; LDO; Manchester encoder; OOK transmitter; SAR ADC; UWB chip antenna; bench-top measurement; broadband parallel neural recording channel; center frequency; clock source; controller ASIC; current 12 mA; custom RF receiver electronics; custom integrated circuit; external head-mounted wireless neural recording device; frequency 3 GHz to 4 GHz; frequency 48 MHz; intracortical microelectrode arrays; low loss dielectric board; low power circuit; mobile human clinical use; multichannel broadband neural recording; neural signal processor; polyether ether ketone enclosure; preamplifier ASIC; printed circuit board; rhesus macaques; ultralow power RF chip; untethered laboratory animal research; voltage 3 V; voltage 3.6 V; wireless neural interface; Animals; Application specific integrated circuits; Arrays; Preamplifiers; Receivers; Transmitters; Wireless communication;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
DOI :
10.1109/EMBC.2013.6610199