DocumentCode :
2716009
Title :
A transimpedance-amplifier-based subtraction principle for optimum signal resolution in mixed-signal current sensor systems
Author :
Mailand, Marko ; Getzlaff, Stefan
Author_Institution :
Bus. Line Med. & SSC, Zentrum Mikroelektron. Dresden AG, Dresden, Germany
fYear :
2011
fDate :
26-29 June 2011
Firstpage :
462
Lastpage :
465
Abstract :
Generally, there are two strategies to obtain a signal difference of two current sources: analog or digital subtraction. Digital subtraction limits the final resolution of the difference. Analog subtraction yields limitations in gain, range and sensitivity, respectively and may suffer from imperfections of the analog subtraction circuitry (e.g. matching, non-linearity, etc.). In this article, an approach is explained and demonstrated to maximize signal range, sensitivity and final resolution for the difference of two or more (sensor) input signals by utilizing integrating amplifiers with differential outputs. The correlated double-sampling concept is extended therefore. Signal properties and system constraints are explained. The applicability is demonstrated by a 0.6μm-CMOS implementation example for the subtraction of two photo-current input signals within a single transimpedance amplification stage.
Keywords :
CMOS analogue integrated circuits; electric sensing devices; mixed analogue-digital integrated circuits; operational amplifiers; CMOS implementation; analog subtraction; correlated double-sampling concept; differential outputs; digital subtraction; integrating amplifiers; mixed-signal current sensor systems; photocurrent input signals; size 0.6 mum; transimpedance-amplifier-based subtraction principle; Current measurement; Dynamic range; Mirrors; Sensitivity; Sensor systems; Signal resolution; Switches;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
New Circuits and Systems Conference (NEWCAS), 2011 IEEE 9th International
Conference_Location :
Bordeaux
Print_ISBN :
978-1-61284-135-9
Type :
conf
DOI :
10.1109/NEWCAS.2011.5981270
Filename :
5981270
Link To Document :
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