Ultra-low power circuits for power management

Recent developments in energy harvesting techniques allowed implementation of completely autonomous biosensor nodes. However, an energy harvesting device generally demands a customized power management unit (PMU) in order to provide the adequate voltage supply for the biosensor. One of the key block...

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Main Author: Forestiere, Giuseppe
Format: Others
Language:English
Published: KTH, Skolan för informations- och kommunikationsteknik (ICT) 2014
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-143812
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-1438122018-01-12T05:12:29ZUltra-low power circuits for power managementengForestiere, GiuseppeKTH, Skolan för informations- och kommunikationsteknik (ICT)2014Computer and Information SciencesData- och informationsvetenskapRecent developments in energy harvesting techniques allowed implementation of completely autonomous biosensor nodes. However, an energy harvesting device generally demands a customized power management unit (PMU) in order to provide the adequate voltage supply for the biosensor. One of the key blocks within this PMU is a regulation DC-DC converter. In this Master Thesis, the most relevant switched-capacitor DC-DC converter topologies that are suitable for biosensors are compared. The topology that can achieve the best efficiency and has the minimum area is chosen and designed. In order to maintain the supply voltage of the biosensor constant when the input voltage and the output current vary, a traditional Pulse-Frequency-Modulation (PFM) control is employed. An ultra-low-power PFM control circuit is designed to operate in weak inversion region. The post-layout simulations show that the designed DC-DC converter can provide an output voltage of 900mV when the output current varies between 5μA and 40μA. Additionally, the post layout simulations of the entire system, which includes the DC-DC converter and PFM control, show that the selected topology can achieve 87% peak efficiency, when the control losses are included. The main advantages of the proposed topology are its smaller chip area and its high efficiency during processing ultra-low power levels. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-143812TRITA-ICT-EX ; 2014:28application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Computer and Information Sciences
Data- och informationsvetenskap
spellingShingle Computer and Information Sciences
Data- och informationsvetenskap
Forestiere, Giuseppe
Ultra-low power circuits for power management
description Recent developments in energy harvesting techniques allowed implementation of completely autonomous biosensor nodes. However, an energy harvesting device generally demands a customized power management unit (PMU) in order to provide the adequate voltage supply for the biosensor. One of the key blocks within this PMU is a regulation DC-DC converter. In this Master Thesis, the most relevant switched-capacitor DC-DC converter topologies that are suitable for biosensors are compared. The topology that can achieve the best efficiency and has the minimum area is chosen and designed. In order to maintain the supply voltage of the biosensor constant when the input voltage and the output current vary, a traditional Pulse-Frequency-Modulation (PFM) control is employed. An ultra-low-power PFM control circuit is designed to operate in weak inversion region. The post-layout simulations show that the designed DC-DC converter can provide an output voltage of 900mV when the output current varies between 5μA and 40μA. Additionally, the post layout simulations of the entire system, which includes the DC-DC converter and PFM control, show that the selected topology can achieve 87% peak efficiency, when the control losses are included. The main advantages of the proposed topology are its smaller chip area and its high efficiency during processing ultra-low power levels.
author Forestiere, Giuseppe
author_facet Forestiere, Giuseppe
author_sort Forestiere, Giuseppe
title Ultra-low power circuits for power management
title_short Ultra-low power circuits for power management
title_full Ultra-low power circuits for power management
title_fullStr Ultra-low power circuits for power management
title_full_unstemmed Ultra-low power circuits for power management
title_sort ultra-low power circuits for power management
publisher KTH, Skolan för informations- och kommunikationsteknik (ICT)
publishDate 2014
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-143812
work_keys_str_mv AT forestieregiuseppe ultralowpowercircuitsforpowermanagement
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