IEEE Transactions on Biomedical Circuits and Systems · 2012 · 163 citations · 24 references
Medical ElectronicsEngineeringReal-time EstimationMeasurementEducationBiomedical EngineeringMedical InstrumentationBioimpedance SensorsBiosensing SystemsBiomechanicsFully Integrated IaBiomedical DevicesBiostatisticsDance ImagesInstrumentationBiomedical AnalysisBioinstrumentationBiomedical SensorsSensorsBioelectronicsPhysiologyBiomedical InstrumentationElectrophysiologyMotion Artifact SuppressionReadout ChannelElectronic InstrumentationWearable BiosensorsMotion ArtifactsBiopotential Acquisition Ic
This paper proposes a 3-channel biopotential monitoring ASIC with simultaneous electrode-tissue impedance measurements which allows real-time estimation of motion artifacts on each channel using an an external μC. The ASIC features a high performance instrumentation amplifier with fully integrated sub-Hz HPF rejecting rail-to-rail electrode-offset voltages. Each readout channel further has a programmable gain amplifier and programmable 4th order low-pass filter. Time-multiplexed 12 b SAR-ADCs are used to convert all the analog data to digital. The ASIC achieves >; 115 dB of CMRR (at 50/60 Hz), a high input impedance of >; 1 GΩ and low noise (1.3 μVrms in 100 Hz). Unlike traditional methods, the ASIC is capable of actual motion artifact suppression in the analog domain before final amplification. The complete ASIC core operates from 1.2 V with 2 V digital IOs and consumes 200 μW when all 3 channels are active.
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Medical Instrumentation-Application and Design
John G. Webster · Journal of Clinical Engineering · 1978 · 1.8K citations
The flipped voltage follower: a useful cell for low-voltage low-power circuit design
R.G. Carvajal, J. Ramírez‐Angulo, Antonio J. López‐Martín et al. · IEEE Transactions on Circuits and Systems I Fundamental Theory and Applications · 2005 · 688 citations
Low-power Electronics, Electrical Engineering, Engineering +14