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Low-power low-noise analog signal conditioning chip with on-chip drivers for healthcare applications

Published: 01 November 2012 Publication History

Abstract

This paper presents an ultra low-noise, low-voltage complete analog signal conditioning chip, fabricated in 180nm mixed-mode CMOS process. In contrast to many already-reported biomedical chips the test chip has been fabricated in a relatively scaled technology operating at low supply voltage of 1.8V. This enables targeting energy-efficient hand-held biomedical devices where low-noise analog signal conditioning, preliminary processing and low-power wireless functionalities will be integrated on one chip. The test chip features instrumentation amplifier (INA) with chopper modulation at the first stage. The second stage is a novel area efficient spike removal filter (SRF) for attenuating coupled chopping spikes. The last stage is a differential active RC filter to adjust gain and bandwidth of the forward channel. On-chip non-overlapping clock generators with frequency of 4kHz and 8kHz for SRF stage are also implemented on the test. The chip also features a reconfigurable driven-right-leg circuit (DRLC) and shield drive amplifier (SDA) in the feedback path specifically for portable healthcare instruments. The DRLC provides the feedback either with operational amplifier (op-amp) or operational transconductance amplifier (OTA), configurable by the user. The presented test chip, for the first time, demonstrates an integrated OTA-based DRLC along with INA. INA and drivers have been designed and optimized for minimum power dissipation using a power-oriented design flow. The measurement results show that the INA achieves input-referred noise density of 28nv/Hz and DC current of 5.9@mA maintaining minimum of 109dB at 1.91kHz. Measurements also show that 34dB interference reduction at 50Hz is achieved with DRLC. Low operating voltage, wide range of specifications and reconfigurable modules and interconnections enable the chip to be used for broad range of signal conditioning applications.

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  • (2022)Application of Advanced Operational Amplifiers in Biomedical Signal SystemsProceedings of the 7th International Conference on Cyber Security and Information Engineering10.1145/3558819.3565137(525-530)Online publication date: 23-Sep-2022
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  • (2016)A novel low-noise fully differential CMOS instrumentation amplifier with 1.88 noise efficiency factor for biomedical and sensor applicationsMicroelectronics Journal10.1016/j.mejo.2016.04.00853:C(35-44)Online publication date: 1-Jul-2016
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  1. Low-power low-noise analog signal conditioning chip with on-chip drivers for healthcare applications

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    Published In

    cover image Microelectronics Journal
    Microelectronics Journal  Volume 43, Issue 11
    November, 2012
    209 pages

    Publisher

    Elsevier Science Publishers B. V.

    Netherlands

    Publication History

    Published: 01 November 2012

    Author Tags

    1. Chopper modulated instrumentation amplifier
    2. Driven right leg circuit
    3. Shield drive amplifier
    4. Spike removal filter

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    View all
    • (2022)Application of Advanced Operational Amplifiers in Biomedical Signal SystemsProceedings of the 7th International Conference on Cyber Security and Information Engineering10.1145/3558819.3565137(525-530)Online publication date: 23-Sep-2022
    • (2017)A low standby power consumption AC/DC converter with exponential compensationMicroelectronics Journal10.1016/j.mejo.2017.03.01265:C(31-39)Online publication date: 1-Jul-2017
    • (2016)A novel low-noise fully differential CMOS instrumentation amplifier with 1.88 noise efficiency factor for biomedical and sensor applicationsMicroelectronics Journal10.1016/j.mejo.2016.04.00853:C(35-44)Online publication date: 1-Jul-2016
    • (2014)A low power wireless node for contact and contactless heart monitoringMicroelectronics Journal10.1016/j.mejo.2014.07.00245:12(1656-1664)Online publication date: 1-Dec-2014
    • (2014)An approach to design and implementation of on-chip clock generator for the switched capacitor based embedded DC-DC converterComputers and Electrical Engineering10.1016/j.compeleceng.2013.11.02940:4(1042-1052)Online publication date: 1-May-2014

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