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  4. A 0.18 mu m Biosensor Front-End Based on 1/f Noise, Distortion Cancelation and Chopper Stabilization Techniques
 
research article

A 0.18 mu m Biosensor Front-End Based on 1/f Noise, Distortion Cancelation and Chopper Stabilization Techniques

Balasubramanian, Viswanathan
•
Ruedi, Pierre-Francois
•
Temiz, Yuksel  
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2013
IEEE Transactions On Biomedical Circuits And Systems

This paper presents a novel sensor front-end circuit that addresses the issues of 1/f noise and distortion in a unique way by using canceling techniques. The proposed front-end is a fully differential transimpedance amplifier (TIA) targeted for current mode electrochemical biosensing applications. In this paper, we discuss the architecture of this canceling based front-end and the optimization methods followed for achieving low noise, low distortion performance at minimum current consumption are presented. To validate the employed canceling based front-end, it has been realized in a 0.18 mu m CMOS process and the characterization results are presented. The front-end has also been tested as part of a complete wireless sensing system and the cyclic voltammetry (CV) test results from electrochemical sensors are provided. Overall current consumption in the front-end is 50 mu A while operating on a 1.8 V supply.

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Type
research article
DOI
10.1109/Tbcas.2012.2234121
Web of Science ID

WOS:000326622800012

Author(s)
Balasubramanian, Viswanathan
Ruedi, Pierre-Francois
Temiz, Yuksel  
Ferretti, Anna  
Guiducci, Carlotta  
Enz, Christian C.
Date Issued

2013

Publisher

Ieee-Inst Electrical Electronics Engineers Inc

Published in
IEEE Transactions On Biomedical Circuits And Systems
Volume

7

Issue

5

Start page

660

End page

673

Subjects

1/f noise

•

chopping

•

current mode electrochemical biosensor

•

distortion canceling

•

low noise

•

low power

•

noise canceling

•

strong inversion

•

transimpedance front-end (read-out)

•

weak inversion

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
December 9, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/97728
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