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Journal ArticleDOI

A −68 dB THD, 0.6 mm 2 Active Area Biosignal Acquisition System With a 40–320 Hz Duty-Cycle Controlled Filter

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TLDR
In real-time Electrocardiogram (ECG), Electromyography (EMG), and Electroencephalography (EEG) measurements, high-fidelity waveforms are acquired using the proposed FE IC, validating the system’s reconfigurability and high-linearity.
Abstract
This paper presents a reconfigurable front-end (FE) circuit for acquiring various low-frequency biomedical signals. An energy and area-efficient tunable filter is proposed for adapting the FE bandwidth to the signal of interest. The filter is designed using a switched-R-MOSFET-C (SRMC) technique to realize the needed ultra-low cutoff frequency. An 8-bit SAR ADC, following the filter, quantizes the signal, while the SAR control logic is re-used to accurately program the filter bandwidth from 40 Hz to 320 Hz with a 40 Hz step. The prototype chip includes the complete FE system, formed of an instrumentation amplifier (IA), a programmable-gain amplifier (PGA), and the proposed tunable filter followed by the SAR ADC. Implemented in 0.13 $\mu \text{m}$ CMOS technology, the IC occupies a 0.6 mm2 active area while consuming 6.3 $\mu \text{W}$ dc power from a 2-V supply. Measurement results show a FE gain range of 43–55 dB with an integrated input-referred noise ( ${V_{\text {IRN}}}$ ) of 3.45 $\mu V_{\text {rms}}$ , a 66 dB dynamic range (DR), and a total-harmonic distortion (THD) of −68 dB at an input amplitude of 6 $\text{m}V_{PP}$ . The effective number of bits (ENOB) for the ADC is 7.921 bits at 1-kS/s. In real-time Electrocardiogram (ECG), Electromyography (EMG), and Electroencephalography (EEG) measurements, high-fidelity waveforms are acquired using the proposed FE IC, validating the system’s reconfigurability and high-linearity.

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Citations
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Journal ArticleDOI

A 12.3-μW 0.72-mm² Fully Integrated Front-End IC for Arterial Pulse Waveform and ExG Recording

TL;DR: In this article, a power and area efficient front-end (FE) IC for biomedical instrumentation is presented and provides a noninvasive arterial pulse waveform (APW) detection through direct skin contact with a packaged silicone-coated resistive-bridge pressure sensor.
Journal ArticleDOI

A 12-Bit 50 MS/s Split-CDAC-Based SAR ADC Integrating Input Programmable Gain Amplifier and Reference Voltage Buffer

TL;DR: This article describes an asynchronous split-CDAC-based SAR ADC with integrated input PGA and an RV-Buffer, which increases the dynamic input range of the ADC.
Journal ArticleDOI

Distributed switched-resistor approach for high-Q biquad filters

TL;DR: This paper presents a distributed switched-resistor approach that aims to strongly mitigate the effect of parasitic capacitances on the value of the equivalent resistance even when exploiting very small values for the duty cycle, thus allowing resistance multiplication factors up to a few thousands.
Journal ArticleDOI

A low power and ultra-high input impedance analog front end based on fully differential difference inverter-based amplifier for biomedical applications

TL;DR: In this article, a low power and low noise analog front end (AFE) is designed for biosignal acquisition by combining the fully differential difference amplifier (FDDA) structure with inverter-based to achieve the optimal power, noise, CMRR, and input impedance simultaneously.
Journal ArticleDOI

A 4-μW Analog Front End Achieving 2.4 NEF for Long-Term ECG Monitoring

TL;DR: An ultra-low power low noise analog front end (AFE) is presented in this work, aiming for long-term ECG with clear P-waves for clinical diagnose, which achieves a noise-efficient-factor (NEF) of 2.4 and an input-referred noise of 0.39 Vrms, which shows 3.7X noise improvements among the state-of-the-art designs.
References
More filters
Journal ArticleDOI

A low-power low-noise CMOS amplifier for neural recording applications

TL;DR: In this article, a low-noise low-power biosignal amplifiers capable of amplifying signals in the millihertz-to-kilohertz range while rejecting large dc offsets generated at the electrode-tissue interface is presented.
Journal ArticleDOI

A 10-bit 50-MS/s SAR ADC With a Monotonic Capacitor Switching Procedure

TL;DR: In this paper, a low-power 10-bit 50-MS/s successive approximation register (SAR) analog-to-digital converter (ADC) that uses a monotonic capacitor switching procedure is presented.
Journal ArticleDOI

MOS operational amplifier design-a tutorial overview

TL;DR: In this paper, an overview of current design techniques for operational amplifiers implemented in CMOS and NMOS technology at a tutorial level is presented, focusing on CMOS amplifiers because of their more widespread use.
Proceedings Article

A 10-bit 50-MS/s SAR ADC With a Monotonic Capacitor Switching Procedure

TL;DR: This paper presents a low-power 10-bit 50-MS/s successive approximation register (SAR) analog-to-digital converter (ADC) that uses a monotonic capacitor switching procedure and has a figure of merit (FOM) of 29 fJ/conversion-step.
Journal ArticleDOI

Design of Ultra-Low Power Biopotential Amplifiers for Biosignal Acquisition Applications

TL;DR: A closed-loop complementary-input amplifier, which has a bandwidth of 0.05 Hz to 10.5 kHz, an input-referred noise of 2.2 μ Vrms, and a power dissipation of 12 μW, is introduced.
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