64 research outputs found

    Energy management techniques for ultra-small bio-medical implants

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    Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2012.Cataloged from PDF version of thesis.Includes bibliographical references (p. 167-174).Trends in the medical industry have created a growing demand for implantable medical devices. In particular, the need to provide medical professionals a means to continuously monitor bio-markers over long time scales with increased precision is paramount to efficient healthcare. To make medical implants more attractive, there is a need to reduce their size and power consumption. Small medical implants would allow for less invasive procedures and greater comfort for patients. The two primary limitations to the size of small medical implants are the batteries that provide energy to circuit and sensor components, and the antennas that enable wireless communication to terminals outside of the body. In this work we present energy management and low-power techniques to help solve the engineering challenges posed by using ultracapacitors for energy storage. A major problem with using any capacitor as an energy source is the fact that its voltage drops rapidly with decreasing charge. This leaves the circuit to cope with a large supply variation and can lead to energy being left on the capacitor when its voltage gets too low to supply a sufficient supply voltage for operation. Rather than use a single ultracapacitor, we demonstrate higher energy utilization by splitting a single capacitor into an array of capacitors that are progressively reconfigured as energy is drawn out. An energy management IC fabricated in 180-nm CMOS implements a stacking procedure that allows for more than 98% of the initial energy stored in the ultracapacitors to be removed before the output voltage drops unsuitably low for circuit operation. The second part of this work develops techniques for wide-input-range energy management. The first chip implementing stacking suffered an efficiency penalty by using a switchedcapacitor voltage regulator with only a single conversion ratio. In a second implementation, we introduce a better solution that preserves efficiency performance by using a multiple conversion ratio switched-capacitor voltage regulator. At any given input voltage from an ultracapcitor array, the switched-capacitor voltage regulator is configured to maximize efficiency. Fabricated in a 180-nm CMOS process, the chip achieves a peak efficiency of 90% and the efficiency does not fall below 70% for input voltages between 1.25 and 3 V.by William R. Sanchez.Ph.D

    An Overview of Fully Integrated Switching Power Converters Based on Switched-Capacitor versus Inductive Approach and Their Advanced Control Aspects

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    This paper reviews and discusses the state of the art of integrated switched-capacitor and integrated inductive power converters and provides a perspective on progress towards the realization of efficient and fully integrated DC–DC power conversion. A comparative assessment has been presented to review the salient features in the utilization of transistor technology between the switched-capacitor and switched inductor converter-based approaches. First, applications that drive the need for integrated switching power converters are introduced, and further implementation issues to be addressed also are discussed. Second, different control and modulation strategies applied to integrated switched-capacitor (voltage conversion ratio control, duty cycle control, switching frequency modulation, Ron modulation, and series low drop out) and inductive converters (pulse width modulation and pulse frequency modulation) are then discussed. Finally, a complete set of integrated power converters are related in terms of their conditions and operation metrics, thereby allowing a categorization to provide the suitability of converter technologies

    MODELING AND CONTROL OF DIRECT-CONVERSION HYBRID SWITCHED-CAPACITOR DC-DC CONVERTERS

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    Efficient power delivery is increasingly important in modern computing, communications, consumer and other electronic systems, due to the high power demand and thermal concerns accompanied by performance advancements and tight packaging. In pursuit of high efficiency, small physical volume, and flexible regulation, hybrid switched-capacitor topologies have emerged as promising candidates for such applications. By incorporating both capacitors and inductors as energy storage elements, hybrid topologies achieve high power density while still maintaining soft charging and efficient regulation characteristics. However, challenges exist in the hybrid approach. In terms of reliability, each flying capacitor should be maintained at a nominal `balanced\u27 voltage for robust operation (especially during transients and startup), complicating the control system design. In terms of implementation, switching devices in hybrid converters often need complex gate driving circuits which add cost, area, and power consumption. This dissertation explores techniques that help to mitigate the aforementioned challenges. A discrete-time state space model is derived by treating the hybrid converter as two subsystems, the switched-capacitor stage and the output filter stage. This model is then used to design an estimator that extracts all flying capacitor voltages from the measurement of a single node. The controllability and observability of the switched-capacitor stage reveal the fundamental cause of imbalance at certain conversion ratios. A new switching sequence, the modified phase-shifted pulse width modulation, is developed to enable natural balance in originally imbalanced scenarios. Based on the model, a novel control algorithm, constant switch stress control, is proposed to achieve both output voltage regulation and active balance with fast dynamics. Finally, the design technique and test result of an integrated hybrid switched-capacitor converter are reported. A proposed gate driving strategy eliminates the need for external driving supplies and reduces the bootstrap capacitor area. On-chip mixed signal control ensures fast balancing dynamics and makes hard startup tolerable. This prototype achieves 96.9\% peak efficiency at 5V:1.2V conversion and a startup time of 12μs\mu s, which is over 100 times faster than the closest prior art. With the modeling, control, and design techniques introduced in this dissertation, the application of hybrid switched-capacitor converters may be extended to scenarios that were previously challenging for them, allowing enhanced performance compared to using traditional topologies. For problems that may require future attention, this dissertation also points to possible directions for further improvements

    Front End of a 900MHz RFID for Biological Sensing

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    This thesis presents the front end of a 900MHz passive RFID for biological sensing. The components blocks of the front end consist of power harvester, switch capacitor voltage regulator, phase lock loop and a modulator and demodulator. As the RFID is passive so the power resource is limited hence the main focus while implementing all the block was low power and high efficiency power conversion. All the individual block were optimized to provide maximum efficiency. For the harvester to achieve high efficiency and high output voltage a design approach is discussed by which the device sizes are optimized and the values of the matching network components are solved. The efficiency achieved with this approach is 34% while supplying 74�[email protected]. The switch capacitor voltage regulator would supply power to the digital core of the RFID, which will operate at subtheshold or moderate inversion. The switch capacitor implemented in this work is a adaptive voltage regulator, as I intend to use the dynamic supply voltage scaling technique to compensate for the reduction in reliability of performance of the circuit due to variation of VTH across process due to random doping effects and temperature in subthreshold.The phase lock loop (PLL) block in this front end provide the system clock synchronized with the base station to all the backend blocks like the digital controller, memory, and the analog to digital converter ADC and the switch capacitor voltage regulator. The PLL is a low power with jitter of 24nsec and is capable of clock data recovery from EPC gen 2 protocol format data and consumes 3�W of power Finally a ultra low power AM (amplitude modulation) demodulator is presented which is consumes only 100nW and is capable of demodulating a double-sideband amplitude modulated (DSB-AM) signal centered at 900MHz and the modulating frequency is 160KHz. The demodulator can demodulate signal having as low as -5dBm power and 50% modulation index. The modulation for transmitting signal is achieved by BPSK(back scatter phase shift keying).Electrical Engineerin

    Integrated high-voltage switched-capacitor DC-DC converters

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    The focus of this work is on the integrated circuit (IC) level integration of high-voltage switched-capacitor (SC) converters with the goal of fully integrated power management solutions for system-on-chip (SoC) and system-in-pagage (SiP) applications. The full integration of SC converters provides a low cost and compact power supply solution for modern electronics. Currently, there are almost no fully integrated SC converters with input voltages above 5 V. The purpose of this work is to provide solutions for higher input voltages. The increasing challenges of a compact and efficient power supply on the chip are addressed. High-voltage rated components and the increased losses caused by parasitics not only reduce power density but also efficiency. Loss mechanisms in high-voltage SC converters are investigated resulting in an optimized model for high-voltage SC converters. The model developed allows an appropriate comparison of different semiconductor technologies and converter topologies. Methods and design proposals for loss reduction are presented. Control of power switches with their supporting circuits is a further challenge for high-voltage SC converters. The aim of this work is to develop fully integrated SC converters with a wide input voltage range. Different topologies and concepts are investigated. The implemented fully integrated SC converter has an input voltage range of 2 V to 13 V. This is twice the range of existing converters. This is achieved by an implemented buck and boost mode as well as 17 conversion ratios. Experimental results show a peak efficiency of 81.5%. This is the highest published peak efficiency for fully integrated SC converters with an input voltage > 5V. With the help of the model developed in this work, a three-phase SC converter topology for input voltages up to 60 V is derived and then investigated and discussed. Another focus of this work is on the power supply of sensor nodes and smart home applications with low-power consumption. Highly integrated micro power supplies that operate directly from mains voltage are particularly suitable for these applications. The micro power supply proposed in this work utilizes the high-voltage SC converter developed. The output power is 14 times higher and the power density eleven times higher than prior work. Since plenty of power switches are built into modern multi-ratio SC converters, the switch control circuits must be optimized with regard to low-power consumption and area requirements. In this work, different level shifter concepts are investigated and a low-power high-voltage level shifter for 50 V applications based on a capacitive level shifter is introduced. The level shifter developed exceeds the state of the art by a factor of more than eleven with a power consumption of 2.1pJ per transition. A propagation delay of 1.45 ns is achieved. The presented high-voltage level shifter is the first level shifter for 50 V applications with a propagation delay below 2 ns and power consumption below 20pJ per transition. Compared to the state of the art, the figure of merit is significantly improved by a factor of two. Furthermore, various charge pump concepts are investigated and evaluated within the context of this work. The charge pump, optimized in this work, improves the state of the art by a factor of 1.6 in terms of efficiency. Bidirectional switches must be implemented at certain locations within the power stage to prevent reverse conduction. The topology of a bidirectional switch developed in this work reduces the dynamic switching losses by 70% and the area consumption including the required charge pumps by up to 65% compared to the state of the art. These improvements make it possible to control the power switches in a fast and efficient way. Index terms — integrated power management, high input voltage, multi-ratio SC converter, level shifter, bidirectional switch, micro power supplyDer Schwerpunkt dieser Arbeit liegt auf der Erforschung von Switched-Capacitor (SC) Spannungswandler für höhere Eingangsspannungen. Ziel der Arbeit ist es Lösungen für ein voll auf dem Halbleiterchip integriertes Power Management anzubieten um System on Chip (SoC) und System in Package (SiP) zu ermöglichen. Die vollständige Integration von SC Spannungswandlern bietet eine kostengünstige und kompakte Spannungsversorgungslösung für moderne Elektronik. Der kontinuierliche Trend hin zu immer kompakterer Elektronik und hin zu höheren Versorgungsspannungen wird in dieser Arbeit adressiert. Aktuell gibt es sehr wenige voll integrierte SC Spannungswandler mit einer Eingangsspannung größer 5 V. Die mit steigender Spannung zunehmenden Herausforderungen an eine kompakte und effiziente Spannungsversorgung auf dem Chip werden in dieser Arbeit untersucht. Die höhere Spannungsfestigkeit der verwendeten Komponenten korreliert mit erhöhten Verlusten und erhöhtem Flächenverbrauch, welche sich negativ auf den Wirkungsgrad und die Leistungsdichte von SC Spannungswandlern auswirkt. Bestandteil dieser Arbeit ist die Untersuchung dieser Verlustmechanismen und die Entwicklung eines Modells, welches speziell für höhere Spannungen optimiert wurde. Das vorgestellte Modell ermöglicht zum einen die optimale Dimensionierung der Spannungswandler und zum anderen faire Vergleichsmöglichkeiten zwischen verschiedenen SC Spannungswandler Architekturen und Halbleitertechnologien. Demnach haben sowohl die gewählte Architektur und Halbleitertechnologie als auch die Kombination aus gewählter Architektur und Technologie erheblichen Einfluss auf die Leistungsfähigkeit der Spannungswandler. Ziel dieser Arbeit ist die Vollintegration eines SC Spannungswandlers mit einem weiten und hohen Eingangsspannungsbereich zu entwickeln. Dazu wurden verschiedene Schaltungsarchitekturen und Konzepte untersucht. Der vorgestellte vollintegrierte SC Spannungswandler weist einen Eingangsspannungsbereich von 2 V bis 13 V auf. Dies ist eine Verdopplung im Vergleich zum Stand der Technik. Dies wird durch einen implementierten Auf- und Abwärtswandler-Betriebsmodus sowie 17 Übersetzungsverhältnisse erreicht. Experimentelle Ergebnisse zeigen einen Spitzenwirkungsgrad von 81.5%. Dies ist der höchste veröffentlichte Spitzenwirkungsgrad für vollintegrierte SC Spannungswandler mit einer Eingangsspannung größer 5 V. Mit Hilfe des in dieser Arbeit entwickelten Modells wird eine dreiphasige SC Spannungswandler Architektur für Eingangsspannungen bis zu 60 V entwickelt und anschließend analysiert und diskutiert. Ein weiterer Schwerpunkt dieser Arbeit adressiert die kompakte Spannungsversorgung von Sensorknoten mit geringem Stromverbrauch, für Anwendungen wie Smart Home und Internet der Dinge (IoT). Für diese Anwendungen eignen sich besonders gut hochintegrierte Mikro-Netzteile, welche direkt mit dem 230VRMS-Hausnetz (bzw. 110VRMS) betrieben werden können. Das in dieser Arbeit vorgestellte Mikro-Netzteil nutzt einen in dieser Arbeit entwickelten SC Spannungswandler für hohe Eingangsspannungen. Die damit erzielte Ausgangsleistung ist 14-mal größer im Vergleich zum Stand der Technik. In SC Spannungswandlern für hohe Spannungen werden viele Leistungsschalter benötigt, deshalb muss bei der Schalteransteuerung besonders auf einen geringen Leistungsverbrauch und Flächenbedarf der benötigten Schaltungsblöcke geachtet werden. Gegenstand dieser Arbeit ist sowohl die Analyse verschiedener Konzepte für Pegelumsetzer, als auch die Entwicklung eines stromsparenden Pegelumsetzers für 50 V-Anwendungen. Mit einer Leistungsaufnahme von 2.1pJ pro Signalübergang reduziert der entwickelte Pegelumsetzer mit kapazitiver Kopplung um mehr als elfmal die Leistungsaufnahme im Vergleich zum Stand der Technik. Die erreichte Laufzeitverzögerung beträgt 1.45 ns. Damit erzielt der vorgestellte Hochspannungs-Pegelumsetzer als erster Pegelumsetzer für 50 V-Anwendungen eine Laufzeitverzögerung unter 2 ns und eine Leistungsaufnahme unter 20pJ pro Signalwechsel. Im Vergleich zum Stand der Technik wird die Leistungskennzahl um den Faktor zwei deutlich verbessert. Darüber hinaus werden im Rahmen dieser Arbeiten verschiedene Ladungspumpenkonzepte untersucht und bewertet. Die in dieser Arbeit optimierte Ladungspumpe verbessert den Stand der Technik um den Faktor 1.6 in Bezug auf den Wirkungsgrad. Die in dieser Arbeit entwickelte Schaltungsarchitektur eines bidirektionalen Schalters reduziert die dynamischen Schaltverluste um 70% und den benötigten Flächenbedarf inklusive der benötigten Ladungspumpe um bis zu 65% gegenüber dem Stand der Technik. Diese Verbesserungen ermöglichen es, die Leistungsschalter schnell und effizient anzusteuern. Schlagworte — Integriertes Powermanagement, hohe Eingangsspannung, Multi-Ratio SC Spannungswan- dler, Pegelumsetzer, bidirektionaler Schalter, Mikro-Netztei

    Energy efficient control for power management circuits operating from nano-watts to watts

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    Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2013.Cataloged from PDF version of thesis.Includes bibliographical references (p. 163-172).Energy efficiency and form factor are the key driving forces in today's power electronics. All power delivery circuits, irrespective of the magnitude of power, basically consists of power trains, gate drivers and control circuits. Although the control circuits are primarily required for regulation, these circuits can play a crucial role in achieving high efficiency and/or minimizing overall system form-factor. In this thesis, power converter circuits, spanning a wide operating range- from nano-watts to watts, are presented while highlighting techniques for using digital control circuits not just for regulation but also to achieve high system efficiency and smaller system form-factor. The first part of the thesis presents a power management unit of an autonomous wireless sensor that sustains itself by harvesting energy from the endo-cochlear potential (EP), the 70-100mV electrochemical potential inside the mammalian inner ear. Due to the anatomical constraints, the total extractable power from the EP is limited to 1.1-6.3nW. A low switching frequency boost converter is employed to increase the input voltage to a higher voltage usable by CMOS circuits in the sensor. Ultra-low power digital control circuits with timers help keep the quiescent power of the power management unit down to 544pW. Further, a charge-pump is used to implement leakage reduction techniques in the sensor. This work demonstrates how digital low power control circuit design can help improve converter efficiency and ensure system sustainability. All circuits have been implemented on a 0.18[mu]m CMOS process. The second part of the thesis discusses an energy harvesting architecture that combines energy from multiple energy harvesting sources- photovoltaic, thermoelectric and piezoelectric sources. Digital control circuits that configure the power trains to new efficient system architectures with maximum power point tracking are presented, while using a single inductor to combine energy from the aforementioned energy sources all at the same time. A dual-path architecture for energy harvesting systems is proposed. This provides a peak efficiency improvement of 11-13% over the traditional two stage approach. The system can handle input voltages from 20mV to 5V and is also capable of extracting maximum power from individual harvesters all at the same time utilizing a single inductor. A proposed completely digital timebased power monitor is used for achieving maximum power point tracking for the photovoltaic harvester. This has a peak tracking efficiency of 96%. The peak efficiencies achieved with inductor sharing are 83%, 58% and 79% for photovoltaic boost, thermoelectric boost and piezoelectric buck-boost converters respectively. The switch matrix and the control circuits are implemented on a 0.35pm CMOS process. This part of the thesis highlights how digital control circuits can help reconfigure power converter architectures for improving efficiency and reducing form-factors. The last part of the thesis deals with a power management system for an offline 22W LED driver. In order to reduce the system form factor, Gallium Nitride (GaN) transistors capable of high frequency switching have been utilized with a Quasi-Resonant Inverted Buck architecture. A burst mode digital controller has been used to perform dimming control and power factor correction (PFC) for the LED driver. The custom controller and driver IC was implemented in a 0.35[mu]m CMOS process. The LED driver achieves a peak efficiency of 90.6% and a 0.96 power factor. Due to the high power level of the driver, the digital controller is primarily used for regulation purposes in this system, although the digital nature of the controller helps remove the passives that would be normally present in analog controllers. In this thesis, apart from regulation, control circuit enabled techniques have been used to improve efficiency and reduce system form factor. Low power design and control for reconfigurable power train architectures help improve the overall power converter efficiency. Digital control circuits have been used to reduce the form factor by enabling inductor sharing in a system with multiple power converters or by removing the compensator passives.by Saurav Bandyopadhyay.Ph.D

    Towards a Universal Multi-Standard RF Receiver

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    Future wireless communication market calls for the need of an extreme compact wireless device that can easily access to all the available services at any time and at any location with minimum power consumption and cost. The key is to find a multi-standard wireless receiver that can cover all the service specifications while keeping redundant components to minimum. Reconfigurable concept is right fit the need. In this thesis, a fully integrated universal multi-standard receiver using low-cost CMOS technology has been proposed based on the survey for different wireless receiver specifications and optimum architectures. Tunable receiver building blocks such as filters, LNAs, Mixers, VCOs, gain blocks are the main factor to approach this novel receiver. In order to realize frequency agility, low cost as well as low power consumption, a good switch is a must. In this thesis, MEMS switches are preferred rather than active switches or active tuning elements based on their performance comparisons. In the feasibility study, as an example, first, a reconfigurable LNA and a reconfigurable oscillator using hard wires as switches have been developed, and then a LNA and an oscillator have been designed using a MEMS switch. The effect of hard-wire connection and MEMS to the circuits has been evaluated. No performance degradation has been found when using hard-wire connections, while some has been observed when using MEMS. However, MEMS could be integrated with other circuits on the same die if it could be built on low resistive silicon substrate without performance degradation

    Ultra-low-power circuits and systems for wearable and implantable medical devices

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    Thesis (Ph. D.)--Massachusetts Institute of Technology, Department of Electrical Engineering and Computer Science, 2013.Cataloged from PDF version of thesis.Includes bibliographical references (pages 219-231).Advances in circuits, sensors, and energy storage elements have opened up many new possibilities in the health industry. In the area of wearable devices, the miniaturization of electronics has spurred the rapid development of wearable vital signs, activity, and fitness monitors. Maximizing the time between battery recharge places stringent requirements on power consumption by the device. For implantable devices, the situation is exacerbated by the fact that energy storage capacity is limited by volume constraints, and frequent battery replacement via surgery is undesirable. In this case, the design of energy-efficient circuits and systems becomes even more crucial. This thesis explores the design of energy-efficient circuits and systems for two medical applications. The first half of the thesis focuses on the design and implementation of an ultra-low-power, mixed-signal front-end for a wearable ECG monitor in a 0.18pm CMOS process. A mixed-signal architecture together with analog circuit optimizations enable ultra-low-voltage operation at 0.6V which provides power savings through voltage scaling, and ensures compatibility with state-of-the-art DSPs. The fully-integrated front-end consumes just 2.9[mu]W, which is two orders of magnitude lower than commercially available parts. The second half of this thesis focuses on ultra-low-power system design and energy-efficient neural stimulation for a proof-of-concept fully-implantable cochlear implant. First, implantable acoustic sensing is demonstrated by sensing the motion of a human cadaveric middle ear with a piezoelectric sensor. Second, alternate energy-efficient electrical stimulation waveforms are investigated to reduce neural stimulation power when compared to the conventional rectangular waveform. The energy-optimal waveform is analyzed using a computational nerve fiber model, and validated with in-vivo ECAP recordings in the auditory nerve of two cats and with psychophysical tests in two human cochlear implant users. Preliminary human subject testing shows that charge and energy savings of 20-30% and 15-35% respectively are possible with alternative waveforms. A system-on-chip comprising the sensor interface, reconfigurable sound processor, and arbitrary-waveform neural stimulator is implemented in a 0.18[mu]m high-voltage CMOS process to demonstrate the feasibility of this system. The sensor interface and sound processor consume just 12[mu]W of power, representing just 2% of the overall system power which is dominated by stimulation. As a result, the energy savings from using alternative stimulation waveforms transfer directly to the system.by Marcus Yip.Ph.D

    High Performance RF and Basdband Analog-to-Digital Interface for Multi-standard/Wideband Applications

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    The prevalence of wireless standards and the introduction of dynamic standards/applications, such as software-defined radio, necessitate the next generation wireless devices that integrate multiple standards in a single chip-set to support a variety of services. To reduce the cost and area of such multi-standard handheld devices, reconfigurability is desirable, and the hardware should be shared/reused as much as possible. This research proposes several novel circuit topologies that can meet various specifications with minimum cost, which are suited for multi-standard applications. This doctoral study has two separate contributions: 1. The low noise amplifier (LNA) for the RF front-end; and 2. The analog-to-digital converter (ADC). The first part of this dissertation focuses on LNA noise reduction and linearization techniques where two novel LNAs are designed, taped out, and measured. The first LNA, implemented in TSMC (Taiwan Semiconductor Manufacturing Company) 0.35Cm CMOS (Complementary metal-oxide-semiconductor) process, strategically combined an inductor connected at the gate of the cascode transistor and the capacitive cross-coupling to reduce the noise and nonlinearity contributions of the cascode transistors. The proposed technique reduces LNA NF by 0.35 dB at 2.2 GHz and increases its IIP3 and voltage gain by 2.35 dBm and 2dB respectively, without a compromise on power consumption. The second LNA, implemented in UMC (United Microelectronics Corporation) 0.13Cm CMOS process, features a practical linearization technique for high-frequency wideband applications using an active nonlinear resistor, which obtains a robust linearity improvement over process and temperature variations. The proposed linearization method is experimentally demonstrated to improve the IIP3 by 3.5 to 9 dB over a 2.5–10 GHz frequency range. A comparison of measurement results with the prior published state-of-art Ultra-Wideband (UWB) LNAs shows that the proposed linearized UWB LNA achieves excellent linearity with much less power than previously published works. The second part of this dissertation developed a reconfigurable ADC for multistandard receiver and video processors. Typical ADCs are power optimized for only one operating speed, while a reconfigurable ADC can scale its power at different speeds, enabling minimal power consumption over a broad range of sampling rates. A novel ADC architecture is proposed for programming the sampling rate with constant biasing current and single clock. The ADC was designed and fabricated using UMC 90nm CMOS process and featured good power scalability and simplified system design. The programmable speed range covers all the video formats and most of the wireless communication standards, while achieving comparable Figure-of-Merit with customized ADCs at each performance node. Since bias current is kept constant, the reconfigurable ADC is more robust and reliable than the previous published works

    Reconfigurable Gate Driver Toward High-Power Efficiency and High-Power Density Converters

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    Les systèmes de gestion de l'énergie exigent des convertisseurs de puissance pour fournir une conversion de puissance adaptée à diverses utilisations. Il existe différents types de convertisseurs de puissance, tel que les amplificateurs de puissance de classe D, les demi-ponts, les ponts complets, les amplificateurs de puissance de classe E, les convertisseurs buck et dernièrement les convertisseurs boost. Prenons par exemple les dispositifs implantables, lorsque l'énergie est prélevée de la source principale, des convertisseurs de puissance buck ou boost sont nécessaires pour traiter l'énergie de l'entrée et fournir une énergie propre et adaptée aux différentes parties du système. D'autre part, dans les stations de charge des voitures électriques, les nouveaux téléphones portables, les stimulateurs neuronaux, etc., l'énergie sans fil a été utilisée pour assurer une alimentation à distance, et des amplificateurs de puissance de classe E sont développés pour accomplir cette tâche. Les amplificateurs de puissance de classe D sont un excellent choix pour les casques d'écoute ou les haut-parleurs en raison de leur grande efficacité. Dans le cas des interfaces de capteurs, les demi-ponts et les ponts complets sont les interfaces appropriées entre les systèmes à faible et à forte puissance. Dans les applications automobiles, l'interface du capteur reçoit le signal du côté puissance réduite et le transmet à un réseau du côté puissance élevée. En outre, l'interface du capteur doit recevoir un signal du côté haute puissance et le convertir vers la côté basse puissance. Tous les systèmes mentionnés ci-dessus nécessitent l'inclusion d'un pilote de porte spécifique dans les circuits, selon les applications. Les commandes de porte comprennent généralement un décalage du niveau de commande niveau supérieur, le levier de changement de niveau inférieur, une chaîne de tampon, un circuit de verrouillage sous tension, un circuit de temps mort, des portes logiques, un inverseur de Schmitt et un mécanisme de démarrage. Ces circuits sont nécessaires pour assurer le bon fonctionnement des systèmes de conversion de puissance. Un circuit d'attaque de porte reconfigurable prendrait en charge une vaste gamme de convertisseurs de puissance ayant une tension d'entrée V[indice IN] et un courant de sortie I[indice Load] variables. L'objectif de ce projet est d'étudier intensivement les causes de différentes pertes dans les convertisseurs de puissance et de proposer ensuite de nouveaux circuits et méthodologies dans les différents circuits des conducteurs de porte pour atteindre une conversion de puissance avec une haute efficacité et densité de puissance. Nous proposons dans cette thèse de nouveaux circuits de gestion des temps mort, un Shapeshifter de niveau plus élevé et un Shapeshifter de niveau inférieur avec de nouvelles topologies qui ont été pleinement caractérisées expérimentalement. De plus, l'équation mathématique du temps mort optimal pour les faces haute et basse d'un convertisseur buck est dérivée et expérimentalement prouvée. Les circuits intégrés personnalisés et les méthodologies proposées sont validés avec différents convertisseurs de puissance, tels que les convertisseurs semi-pont et en boucle ouverte, en utilisant des composants standard pour démontrer leur supériorité sur les solutions traditionnelles. Les principales contributions de cette recherche ont été présentées à sept conférences prestigieuses, trois articles évalués par des pairs, qui ont été publiés ou présentés, et une divulgation d'invention. Une contribution importante de ce travail recherche est la proposition d'un nouveau générateur actif CMOS intégré dédié de signaux sans chevauchement. Ce générateur a été fabriqué à l'aide de la technologie AMS de 0.35µm et consomme 16.8mW à partir d'une tension d'alimentation de 3.3V pour commander de manière appropriée les côtés bas et haut d'un demi-pont afin d'éliminer la propagation. La puce fabriquée est validée de façon expérimentale avec un demi-pont, qui a été mis en œuvre avec des composants disponibles sur le marché et qui contrôle une charge R-L. Les résultats des mesures montrent une réduction de 40% de la perte totale d'un demi-pont de 45V d'entrée à 1MHz par rapport au fonctionnement du demi-pont sans notre circuit intégré dédié. Le circuit principal du circuit d'attaque de grille côté haut est le décaleur de niveau, qui fournit un signal de grande amplitude pour le commutateur de puissance côté haut. Une nouvelle structure de décalage de niveau avec un délai de propagation minimal doit être présentée. Nous proposons une nouvelle topologie de décalage de niveau pour le côté haut des drivers de porte afin de produire des convertisseurs de puissance efficaces. Le SL présente des délais de propagation mesurés de 7.6ns. Les résultats mesurés montrent le fonctionnement du circuit présenté sur la plage de fréquence de 1MHz à 130MHz. Le circuit fabriqué consomme 31.5pW de puissance statique et 3.4pJ d'énergie par transition à 1kHz, V[indice DDL] = 0.8V , V[indice DDH] = 3.0V, et une charge capacitive C[indice L] = 0.1pF. La consommation énergétique totale mesurée par rapport à la charge capacitive de 0.1 à 100nF est indiquée. Un autre nouveau décalage vers le bas est proposé pour être utilisé sur le côté bas des pilotes de portes. Ce circuit est également nécessaire dans la partie Rₓ du réseau de bus de données pour recevoir le signal haute tension du réseau et délivrer un signal de faible amplitude à la partie basse tension. L'une des principales contributions de ces travaux est la proposition d'un modèle de référence pour l'abaissement de niveau à puissance unique reconfigurable. Le circuit proposé pilote avec succès une gamme de charges capacitives allant de 10fF à 350pF. Le circuit présenté consomme des puissances statiques et dynamiques de 62.37pW et 108.9µW, respectivement, à partir d'une alimentation de 3.3V lorsqu'il fonctionne à 1MHz et pilote une charge capacitive de 10pF. Les résultats de la simulation post-layout montrent que les délais de propagation de chute et de montée dans les trois configurations sont respectivement de l'ordre de 0.54 à 26.5ns et de 11.2 à 117.2ns. La puce occupe une surface de 80µm × 100µm. En effet, les temps morts des côtés hauts et bas varient en raison de la différence de fonctionnement des commutateurs de puissance côté haut et côté bas, qui sont respectivement en commutation dure et douce. Par conséquent, un générateur de temps mort reconfigurable asymétrique doit être ajouté aux pilotes de portes traditionnelles pour obtenir une conversion efficace. Notamment, le temps mort asymétrique optimal pour les côtés hauts et bas des convertisseurs de puissance à base de Gan doit être fourni par un circuit de commande de grille reconfigurable pour obtenir une conception efficace. Le temps mort optimal pour les convertisseurs de puissance dépend de la topologie. Une autre contribution importante de ce travail est la dérivation d'une équation précise du temps mort optimal pour un convertisseur buck. Le générateur de temps mort asymétrique reconfigurable fabriqué sur mesure est connecté à un convertisseur buck pour valider le fonctionnement du circuit proposé et l'équation dérivée. De plus le rendement d'un convertisseur buck typique avec T[indice DLH] minimum et T[indice DHL] optimal (basé sur l'équation dérivée) à I[indice Load] = 25mA est amélioré de 12% par rapport à un convertisseur avec un temps mort fixe de T[indice DLH] = T[indice DHL] = 12ns.Power management systems require power converters to provide appropriate power conversion for various purposes. Class D power amplifiers, half and full bridges, class E power amplifiers, buck converters, and boost converters are different types of power converters. Power efficiency and density are two prominent specifications for designing a power converter. For example, in implantable devices, when power is harvested from the main source, buck or boost power converters are required to receive the power from the input and deliver clean power to different parts of the system. In charge stations of electric cars, new cell phones, neural stimulators, and so on, power is transmitted wirelessly, and Class E power amplifiers are developed to accomplish this task. In headphone or speaker driver applications, Class D power amplifiers are an excellent choice due to their great efficiency. In sensor interfaces, half and full bridges are the appropriate interfaces between the low- and high-power sides of systems. In automotive applications, the sensor interface receives the signal from the low-power side and transmits it to a network on the high-power side. In addition, the sensor interface must receive a signal from the high-power side and convert it down to the low-power side. All the above-summarized systems require a particular gate driver to be included in the circuits depending on the applications. The gate drivers generally consist of the level-up shifter, the level-down shifter, a buffer chain, an under-voltage lock-out circuit, a deadtime circuit, logic gates, the Schmitt trigger, and a bootstrap mechanism. These circuits are necessary to achieve the proper functionality of the power converter systems. A reconfigurable gate driver would support a wide range of power converters with variable input voltage V[subscript IN] and output current I[subscript Load]. The goal of this project is to intensively investigate the causes of different losses in power converters and then propose novel circuits and methodologies in the different circuits of gate drivers to achieve power conversion with high-power efficiency and density. We propose novel deadtime circuits, level-up shifter, and level-down shifter with new topologies that were fully characterized experimentally. Furthermore, the mathematical equation for optimum deadtimes for the high and low sides of a buck converter is derived and proven experimentally. The proposed custom integrated circuits and methodologies are validated with different power converters, such as half bridge and open loop buck converters, using off-the-shelf components to demonstrate their superiority over traditional solutions. The main contributions of this research have been presented in seven high prestigious conferences, three peer-reviewed articles, which have been published or submitted, and one invention disclosure. An important contribution of this research work is the proposal of a novel custom integrated CMOS active non-overlapping signal generator, which was fabricated using the 0.35−µm AMS technology and consumes 16.8mW from a 3.3−V supply voltage to appropriately drive the low and high sides of the half bridge to remove the shoot-through. The fabricated chip is validated experimentally with a half bridge, which was implemented with off-the-shelf components and driving a R-L load. Measurement results show a 40% reduction in the total loss of a 45 − V input 1 − MHz half bridge compared with the half bridge operation without our custom integrated circuit. The main circuit of high-side gate driver is the level-up shifter, which provides a signal with a large amplitude for the high-side power switch. A new level shifter structure with minimal propagation delay must be presented. We propose a novel level shifter topology for the high side of gate drivers to produce efficient power converters. The LS shows measured propagation delays of 7.6ns. The measured results demonstrate the operation of the presented circuit over the frequency range of 1MHz to 130MHz. The fabricated circuit consumes 31.5pW of static power and 3.4pJ of energy per transition at 1kHz, V[subscript DDL] = 0.8V , V[subscript DDH] = 3.0V , and capacitive load C[subscript L] = 0.1pF. The measured total power consumption versus the capacitive load from 0.1pF to 100nF is reported. Another new level-down shifter is proposed to be used on the low side of gate drivers. Another new level-down shifter is proposed to be used on the low side of gate drivers. This circuit is also required in the Rₓ part of the data bus network to receive the high-voltage signal from the network and deliver a signal with a low amplitude to the low-voltage part. An essential contribution of this work is the proposal of a single supply reconfigurable level-down shifter. The proposed circuit successfully drives a range of capacitive load from 10fF to 350pF. The presented circuit consumes static and dynamic powers of 62.37pW and 108.9µW, respectively, from a 3.3 − V supply when working at 1MHz and drives a 10pF capacitive load. The post-layout simulation results show that the fall and rise propagation delays in the three configurations are in the range of 0.54 − 26.5ns and 11.2 − 117.2ns, respectively. Its core occupies an area of 80µm × 100µm. Indeed, the deadtimes for the high and low sides vary due to the difference in the operation of the high- and low-side power switches, which are under hard and soft switching, respectively. Therefore, an asymmetric reconfigurable deadtime generator must be added to the traditional gate drivers to achieve efficient conversion. Notably, the optimal asymmetric deadtime for the high and low sides of GaN-based power converters must be provided by a reconfigurable gate driver to achieve efficient design. The optimum deadtime for power converters depends on the topology. Another important contribution of this work is the derivation of an accurate equation of optimum deadtime for a buck converter. The custom fabricated reconfigurable asymmetric deadtime generator is connected to a buck converter to validate the operation of the proposed circuit and the derived equation. The efficiency of a typical buck converter with minimum T[subscript DLH] and optimal T[subscript DHL] (based on the derived equation) at I[subscript Load] = 25mA is improved by 12% compared to a converter with a fixed deadtime of T[subscript DLH] = T[subscript DHL] = 12ns
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