DocumentCode :
27997
Title :
A Low-Voltage Chopper-Stabilized Amplifier for Fetal ECG Monitoring With a 1.41 Power Efficiency Factor
Author :
Shuang Song ; Rooijakkers, Michael ; Harpe, Pieter ; Rabotti, Chiara ; Mischi, Massimo ; van Roermund, Arthur H. M. ; Cantatore, Eugenio
Author_Institution :
Eindhoven Univ. of Technol., Eindhoven, Netherlands
Volume :
9
Issue :
2
fYear :
2015
fDate :
Apr-15
Firstpage :
237
Lastpage :
247
Abstract :
This paper presents a low-voltage current-reuse chopper-stabilized frontend amplifier for fetal ECG monitoring. The proposed amplifier allows for individual tuning of the noise in each measurement channel, minimizing the total power consumption while satisfying all application requirements. The low-voltage current reuse topology exploits power optimization in both the current and the voltage domain, exploiting multiple supply voltages (0.3, 0.6 and 1.2 V). The power management circuitry providing the different supplies is optimized for high efficiency (peak charge-pump efficiency = 90%).The low-voltage amplifier together with its power management circuitry is implemented in a standard 0.18 μm CMOS process and characterized experimentally. The amplifier core achieves both good noise efficiency factor (NEF=1.74) and power efficiency factor (PEF=1.05). Experiments show that the amplifier core can provide a noise level of 0.34 μVrms in a 0.7 to 182 Hz band, consuming 1.17 μW power. The amplifier together with its power management circuitry consumes 1.56 μW, achieving a PEF of 1.41. The amplifier is also validated with adult ECG and pre-recorded fetal ECG measurements.
Keywords :
choppers (circuits); electrocardiography; low noise amplifiers; low-power electronics; medical signal processing; obstetrics; patient monitoring; signal denoising; adult ECG; amplifier core; bandwidth 0.7 Hz to 182 Hz; fetal ECG monitoring; high efficiency amplifier; low-voltage amplifier; low-voltage current reuse topology; low-voltage current-reuse chopper-stabilized frontend amplifier; measurement channel; noise efficiency factor; noise level; noise tuning; power 1.17 muW; power 1.56 muW; power efficiency factor; power management circuitry; power optimization; prerecorded fetal ECG measurements; standard CMOS process; total power consumption; voltage 0.3 V; voltage 0.6 V; voltage 1.2 V; voltage domain; Biomedical measurement; Electrocardiography; Monitoring; Noise; Noise level; Topology; Transistors; Current-reuse; fetal electrocardiography; frontend amplifier; low-power; low-voltage; noise efficiency factor (NEF); power efficiency factor (PEF);
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2015.2417124
Filename :
7086089
Link To Document :
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