Title :
Wireless Micropower Instrumentation for Multimodal Acquisition of Electrical and Chemical Neural Activity
Author :
Mollazadeh, M. ; Murari, K. ; Cauwenberghs, G. ; Thakor, N.
Author_Institution :
Biomed. Eng. Dept., Johns Hopkins Univ., Baltimore, MD, USA
Abstract :
The intricate coupling between electrical and chemical activity in neural pathways of the central nervous system, and the implication of this coupling in neuropathologies, such as Parkinson´s disease, motivates simultaneous monitoring of neurochemical and neuropotential signals. However, to date, neurochemical sensing has been lacking in integrated clinical instrumentation as well as in brain-computer interfaces (BCI). Here, we present an integrated system capable of continuous acquisition of data modalities in awake, behaving subjects. It features one channel each of a configurable neuropotential and a neurochemical acquisition system. The electrophysiological channel is comprised of a 40-dB gain, fully differential amplifier with tunable bandwidth from 140 Hz to 8.2 kHz. The amplifier offers input-referred noise below 2 muV rms for all bandwidth settings. The neurochemical module features a picoampere sensitivity potentiostat with a dynamic range spanning six decades from picoamperes to microamperes. Both systems have independent on-chip, configurable DeltaSigma analog-to-digital converters (ADCs) with programmable digital gain and resolution. The system was also interfaced to a wireless power harvesting and telemetry module capable of powering up the circuits, providing clocks for ADC operation, and telemetering out the data at up to 32 kb/s over 3.5 cm with a bit-error rate of less than 10-5. Characterization and experimental results from the electrophysiological and neurochemical modules as well as the full system are presented.
Keywords :
analogue-digital conversion; biochemistry; bioelectric potentials; biomedical electronics; biomedical telemetry; brain-computer interfaces; data acquisition; differential amplifiers; electroencephalography; energy harvesting; neurophysiology; BCI; ECOG; EEG; bandwidth 140 Hz to 8.2 kHz; brain-computer interface; central nervous system; electrical activity; electrocorticogram; electroencephalogram; electrophysiological channel; fully differential amplifier; gain 40 dB; integrated clinical instrumentation; multimodal acquisition; neurochemical signal; neuropathology; neuropotential signal; on-chip configurable DeltaSigma analog-to-digital converter; picoampere sensitivity potentiostat; programmable digital gain; telemetry module; wireless micropower instrumentation; wireless power harvesting; Bandwidth; Brain computer interfaces; Central nervous system; Chemicals; Couplings; Differential amplifiers; Instruments; Monitoring; Neural pathways; Parkinson´s disease; Brain–computer interface (BCI); biopotential amplifier; chemical sensing; digital telemetry; electrocorticogram (ECOG); electroencephalogram (EEG); inductive coupling; micropower instrumentation; neural interface; neurotransmitters; potentiostat;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2009.2031877