An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC

Bandgap reference circuits are used in a host of analog, digital, and mixed-signal systems to establish an accurate voltage standard for the entire IC. The accuracy of the bandgap reference voltage under steady-state (dc) and transient (ac) conditions is critical to obtain high system performance. I...

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Bibliographic Details
Main Author: Gupta, Vishal
Published: Georgia Institute of Technology 2007
Subjects:
SoC
Online Access:http://hdl.handle.net/1853/16174
id ndltd-GATECH-oai-smartech.gatech.edu-1853-16174
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-161742013-01-07T20:20:37ZAn accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference ICGupta, VishalLateral PNPTrimmingSystem-on-ChipSoCRegulated referencePSRROutput impedanceAccuracyTrimlessBandgap referencesLow-voltageCMOSAnalog circuit designBandgap reference circuits are used in a host of analog, digital, and mixed-signal systems to establish an accurate voltage standard for the entire IC. The accuracy of the bandgap reference voltage under steady-state (dc) and transient (ac) conditions is critical to obtain high system performance. In this work, the impact of process, power-supply, load, and temperature variations and package stresses on the dc and ac accuracy of bandgap reference circuits has been analyzed. Based on this analysis, the a bandgap reference that 1. has high dc accuracy despite process and temperature variations and package stresses, without resorting to expensive trimming or noisy switching schemes, 2. has high dc and ac accuracy despite power-supply variations, without using large off-chip capacitors that increase bill-of-material costs, 3. has high dc and ac accuracy despite load variations, without resorting to error-inducing buffers, 4. is capable of producing a sub-bandgap reference voltage with a low power-supply, to enable it to operate in modern, battery-operated portable applications, 5. utilizes a standard CMOS process, to lower manufacturing costs, and 6. is integrated, to consume less board space has been proposed. The functionality of critical components of the system has been verified through prototypes after which the performance of the complete system has been evaluated by integrating all the individual components on an IC. The proposed CMOS bandgap reference can withstand 5mA of load variations while generating a reference voltage of 890mV that is accurate with respect to temperature to the first order. It exhibits a trimless, dc 3-sigma accuracy performance of 0.84% over a temperature range of -40°C to 125°C and has a worst case ac power-supply ripple rejection (PSRR) performance of 30dB up to 50MHz using 60pF of on-chip capacitance. All the proposed techniques lead to the development of a CMOS bandgap reference that meets the low-cost, high-accuracy demands of state-of-the-art System-on-Chip environments.Georgia Institute of Technology2007-08-16T17:42:43Z2007-08-16T17:42:43Z2007-07-05Dissertationhttp://hdl.handle.net/1853/16174
collection NDLTD
sources NDLTD
topic Lateral PNP
Trimming
System-on-Chip
SoC
Regulated reference
PSRR
Output impedance
Accuracy
Trimless
Bandgap references
Low-voltage
CMOS
Analog circuit design
spellingShingle Lateral PNP
Trimming
System-on-Chip
SoC
Regulated reference
PSRR
Output impedance
Accuracy
Trimless
Bandgap references
Low-voltage
CMOS
Analog circuit design
Gupta, Vishal
An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
description Bandgap reference circuits are used in a host of analog, digital, and mixed-signal systems to establish an accurate voltage standard for the entire IC. The accuracy of the bandgap reference voltage under steady-state (dc) and transient (ac) conditions is critical to obtain high system performance. In this work, the impact of process, power-supply, load, and temperature variations and package stresses on the dc and ac accuracy of bandgap reference circuits has been analyzed. Based on this analysis, the a bandgap reference that 1. has high dc accuracy despite process and temperature variations and package stresses, without resorting to expensive trimming or noisy switching schemes, 2. has high dc and ac accuracy despite power-supply variations, without using large off-chip capacitors that increase bill-of-material costs, 3. has high dc and ac accuracy despite load variations, without resorting to error-inducing buffers, 4. is capable of producing a sub-bandgap reference voltage with a low power-supply, to enable it to operate in modern, battery-operated portable applications, 5. utilizes a standard CMOS process, to lower manufacturing costs, and 6. is integrated, to consume less board space has been proposed. The functionality of critical components of the system has been verified through prototypes after which the performance of the complete system has been evaluated by integrating all the individual components on an IC. The proposed CMOS bandgap reference can withstand 5mA of load variations while generating a reference voltage of 890mV that is accurate with respect to temperature to the first order. It exhibits a trimless, dc 3-sigma accuracy performance of 0.84% over a temperature range of -40°C to 125°C and has a worst case ac power-supply ripple rejection (PSRR) performance of 30dB up to 50MHz using 60pF of on-chip capacitance. All the proposed techniques lead to the development of a CMOS bandgap reference that meets the low-cost, high-accuracy demands of state-of-the-art System-on-Chip environments.
author Gupta, Vishal
author_facet Gupta, Vishal
author_sort Gupta, Vishal
title An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
title_short An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
title_full An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
title_fullStr An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
title_full_unstemmed An accurate, trimless, high PSRR, low-voltage, CMOS bandgap reference IC
title_sort accurate, trimless, high psrr, low-voltage, cmos bandgap reference ic
publisher Georgia Institute of Technology
publishDate 2007
url http://hdl.handle.net/1853/16174
work_keys_str_mv AT guptavishal anaccuratetrimlesshighpsrrlowvoltagecmosbandgapreferenceic
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