Low-power reference circuit design for integrated DC-DC converters

Current reference is a fundamental circuit block for analog and mixed-signal circuit design. Recent dc-dc converter designs require high-performance, low current output current references for low quiescent current operations. This project presents a low-power PVT (process, voltage, temperature) inva...

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Main Author: Tham, Yong Hao
Other Authors: Chang Joseph
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2024
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Online Access:https://hdl.handle.net/10356/176295
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1762952024-05-17T15:45:08Z Low-power reference circuit design for integrated DC-DC converters Tham, Yong Hao Chang Joseph School of Electrical and Electronic Engineering EJSCHANG@ntu.edu.sg Engineering Reference circuit Current reference is a fundamental circuit block for analog and mixed-signal circuit design. Recent dc-dc converter designs require high-performance, low current output current references for low quiescent current operations. This project presents a low-power PVT (process, voltage, temperature) invariant current reference circuit design using TSMC 65nm process node. This circuit replaces conventional on-chip resistor with switched-capacitor equivalent resistor as a reference for voltage-to-current conversion. Overall, this current reference circuit utilizes a PVT invariant bandgap voltage reference circuit as a voltage generator, followed by a voltage-to-current converter utilizing a low-power operational transconductance amplifier (OTA) and switched-capacitor equivalent resistor. This circuit also allows users to choose between external resistor and on-chip switched-capacitor equivalent resistor for current generation, through digital control signals. The on-chip switched capacitor current reference is designed for a 5uA current output, with a total current consumption of 8.761uA, inclusive of reference current output. The circuit is also able to contain the fluctuations of the switching current to within 0.32% of the magnitude of generated current output. It also has a temperature coefficient of 22.02 ppm/℃ for a temperature range of -40℃ to 125℃, and a line sensitivity of 0.17%/V for a voltage range from 1.8V to 2.4V. The process sensitivity, ( / ) is expected to be lower than the Monte Carlo simulation results of 5.02% in post-fabrication measurements with the advantage of precisely fabricated capacitor and an accurate clock reference. The performance of this current reference without trimming matches the performance of circuits in literature review with similar current output range. Bachelor's degree 2024-05-15T07:30:12Z 2024-05-15T07:30:12Z 2024 Final Year Project (FYP) Tham, Y. H. (2024). Low-power reference circuit design for integrated DC-DC converters. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/176295 https://hdl.handle.net/10356/176295 en A2057-231 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Reference circuit
spellingShingle Engineering
Reference circuit
Tham, Yong Hao
Low-power reference circuit design for integrated DC-DC converters
description Current reference is a fundamental circuit block for analog and mixed-signal circuit design. Recent dc-dc converter designs require high-performance, low current output current references for low quiescent current operations. This project presents a low-power PVT (process, voltage, temperature) invariant current reference circuit design using TSMC 65nm process node. This circuit replaces conventional on-chip resistor with switched-capacitor equivalent resistor as a reference for voltage-to-current conversion. Overall, this current reference circuit utilizes a PVT invariant bandgap voltage reference circuit as a voltage generator, followed by a voltage-to-current converter utilizing a low-power operational transconductance amplifier (OTA) and switched-capacitor equivalent resistor. This circuit also allows users to choose between external resistor and on-chip switched-capacitor equivalent resistor for current generation, through digital control signals. The on-chip switched capacitor current reference is designed for a 5uA current output, with a total current consumption of 8.761uA, inclusive of reference current output. The circuit is also able to contain the fluctuations of the switching current to within 0.32% of the magnitude of generated current output. It also has a temperature coefficient of 22.02 ppm/℃ for a temperature range of -40℃ to 125℃, and a line sensitivity of 0.17%/V for a voltage range from 1.8V to 2.4V. The process sensitivity, ( / ) is expected to be lower than the Monte Carlo simulation results of 5.02% in post-fabrication measurements with the advantage of precisely fabricated capacitor and an accurate clock reference. The performance of this current reference without trimming matches the performance of circuits in literature review with similar current output range.
author2 Chang Joseph
author_facet Chang Joseph
Tham, Yong Hao
format Final Year Project
author Tham, Yong Hao
author_sort Tham, Yong Hao
title Low-power reference circuit design for integrated DC-DC converters
title_short Low-power reference circuit design for integrated DC-DC converters
title_full Low-power reference circuit design for integrated DC-DC converters
title_fullStr Low-power reference circuit design for integrated DC-DC converters
title_full_unstemmed Low-power reference circuit design for integrated DC-DC converters
title_sort low-power reference circuit design for integrated dc-dc converters
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/176295
_version_ 1814047186995904512