Two different circuit techniques to enhance the effective transconductance of a CMOS bulk-driven differential input stage are presented in this paper. Both approaches rely on a partial positive feedback, which leads to improved values for the DC gain and the gain-bandwidth product. The operation principle of the first solution is based on modifying the effective conductance of the active load of the input stage, while the second method acts directly on the input differential pair. The suitability of the presented techniques is demonstrated by the design of operational transconductance amplifiers operating at two different supply voltages, i.e., 2.4 and 1.0 V. Besides, the overall design of two applications, namely a 3 V input/output rail-to-rail operational amplifier with high linearity and a 1.2 V second-order OTA-C low-pass filter, is addressed. Simulated results obtained in standard 0.35 lm CMOS technology demonstrate the applicability of the solutions introduced.

Transconductance enhancement in bulk-driven input stages and its applications

TORELLI, GUIDO;
2011-01-01

Abstract

Two different circuit techniques to enhance the effective transconductance of a CMOS bulk-driven differential input stage are presented in this paper. Both approaches rely on a partial positive feedback, which leads to improved values for the DC gain and the gain-bandwidth product. The operation principle of the first solution is based on modifying the effective conductance of the active load of the input stage, while the second method acts directly on the input differential pair. The suitability of the presented techniques is demonstrated by the design of operational transconductance amplifiers operating at two different supply voltages, i.e., 2.4 and 1.0 V. Besides, the overall design of two applications, namely a 3 V input/output rail-to-rail operational amplifier with high linearity and a 1.2 V second-order OTA-C low-pass filter, is addressed. Simulated results obtained in standard 0.35 lm CMOS technology demonstrate the applicability of the solutions introduced.
2011
The Electrical and Electronics Engineering category covers resources concerned with applications of electricity, generally those involving current flow through conductors, as in motors and generators. This category also covers the examination of the conduction of electricity through gases or a vacuum as well as through semiconducting materials. Topics include image and signal processing, electromagnetics, electronic components and materials, microwave technology, and microelectronics.
Esperti anonimi
Inglese
Internazionale
STAMPA
2
68
207
211
5
BULK-DRIVEN MOS TRANSISTORS; CMOS ANALOG INTEGRATED CIRCUITS; LOW VOLTAGE; OPERATIONAL AMPLIFIERS; OPERATIONAL TRANSCONDUCTANCE AMPLIFIERS; OTA-C CONTINUOUS-TIME FILTERS
3
info:eu-repo/semantics/article
262
J. M., Carrillo; Torelli, Guido; J. F., Duque Carrillo
1 Contributo su Rivista::1.1 Articolo in rivista
none
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/225559
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