Low-Power Analog IC Design

    On-Line Class
    CET – Central European Time Zone

    Download One-Page Schedule Here

    Week 1: June 14-18, 2027

    Week 2: June 21-25, 2027

    Registration deadline: May 31, 2027
    Payment deadline: June 3, 2027

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    TEACHING HOURS

    DAILY Central European Time CET Eastern Standard Time EST Pacific Standard Time PST India Standard Time IST
    Module 1 3:00-4:30 pm 9:00-10:30 am 6:00-7:30 am 6:30-8:00 pm
    Module 2 5:00-6:30 pm 11:00 am – 12:30 pm 8:00-9:30 am 8:30-10:00 pm

    WEEK 1: June 14-18

    Monday, June 14

    3:00-6:30 pm MOS Transistor Modeling for Low-Voltage and Low-Power Circuit Design Christian Enz

    Tuesday, June 15

    3:00-6:30 pm Design of Low-Power Analog Circuits using the Inversion Coefficient Christian Enz

    Wednesday, June 16

    3:00-4:30 pm Fundamentals of Noise in Analog Circuits Taekwang Jang
    5:00-6:30 pm Op-Amp Topologies and Design Fundamentals Dante Muratore

    Thursday, June 17

    3:00-6:30 pm Micropower ADCs Kofi Makinwa

    Friday, June 18

    3:00-4:30 pm Design of Low-Power SAR ADCs Dante Muratore
    5:00-6:30 pm Analog Design Methodology and Practical Techniques for Frequency Compensation Vadim Ivanov

    WEEK 2: June 21-25

    Monday, June 21

    3:00-6:30 pm Power Dissipation in Analog Circuits Klaas Bult

    Tuesday, June 22

    3:00-4:30 pm Power Dissipation in ADC Buidling Blocks Klaas Bult
    5:00-6:30 pm Power Dissipation in ADCs Klaas Bult

    Wednesday, June 23

    3:00-6:30 pm Energy Efficient Sensor Interfaces Taekwang Jang

    Thursday, June 24

    3:00-6:30 pm Low-Power Frequency Reference Circuits Taekwang Jang

    Friday, June 25

    3:00-4:30 pm Energy Efficient Voltage References, Biasing in Analog Systems and Current Sources Vadim Ivanov
    5:00-6:30 pm Power Management With Nanoampere Consumption and Efficient Energy Harvesting Vadim Ivanov
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    Abstracts

    Low-Power Analog IC Design
    On-Line Class
    June 14-25, 2027

    MOS Transistor Modeling for Low-Voltage and
    Low-Power Circuit Design
    Christian Enz, EPFL

    Evolution of CMOS technologies: process scaling, low-voltage constraint. Basic long-channel static theory. Short- and narrow-channel effects. Quasi-static dynamic model. Thermal and flicker noise model. Parameter extraction. The EKV model and its use for LV and LP analog circuit design.

    Design of Low-power Analog Circuits using the Inversion Coefficient
    Christian Enz, EPFL

    The supply voltage of CMOS chips has constantly been scaled down in the last years to reach now the sub-1V region. This supply voltage reduction is mainly driven on one hand by the technology constraints to maintain a reasonable electric field within the MOS device to avoid high-field effects and on the other hand by the needs of digital circuits to reduce the dynamic power consumption. Analog circuits unfortunately don’t take any advantage of this voltage down-scaling since almost all their performances are degraded and some basic circuits would even stop operating correctly. We will discuss the main challenges faced when designing analog circuits for ultra-low voltage (ULV) operation. We will first present the fundamental limits set by ULV, together with the technology limitations (such as matching) for analog circuits. We will then have a closer look at the MOS transistor operation with a particular focus on weak inversion, the Gm/ID characteristic and the inversion coefficient design approach. We then will review several basic building blocks capable of operating at ULV, including both continuous-time and sampled-data circuits. Finally we will investigate the potential of designing RF circuits in ULV taking advantage of ultra-deep submicron processes and give some design examples.

    Fundamentals of Noise in Analog Circuits
    Taekwang Jang, ETHZ

    Abstract

    Op-Amp Topologies and Design Fundamentals
    Dante Muratore, TU Delft

    While there exist a myriad of topologies and design tricks for integrated opamps, these two introductory modules intend to untangle the design space with an emphasis on the fundamentals. Covered topics will include: (1) Elementary building blocks operated at low supply voltage and/or low current: Current mirrors, differential pairs, inverter-based stages, low-voltage cascode configurations; (2) Basic topologies: Telescopic, folded-cascode, and multi-stage; (3) Stability and frequency compensation techniques; (4) fully differential implementation and common-mode feedback.

    Micropower ADCs
    Kofi Makinwa, TU Delft

    With the current trend towards increasingly autonomous systems, micropower ADCs have become critical components. In this presentation, the basic principles of micropower SAR and sigma-delta ADCs will be discussed. It will also be shown how these two proven techniques can be combined to realize high resolution micropower ADCs.

    Design of Low-Power SAR ADCs
    Dante Muratore, TU Delft

    A tutorial-based class on SAR design with practical aspects by  hands-on architecture modeling and gm/ID-based circuit design. How to model in MATLAB different techniques for low power.

    Analog Design Methodology and Practical Techniques for Frequency Compensation
    Vadim Ivanov, Texas Instruments

    Every analog IC comprises multiple feedback loops. Interaction between these loops makes frequency compensation of such system non-trivial task, unsupported by the general control theory. Every MOS or bipolar transistor is nonlinear, which may cause conditional stability and complicate compensation.
    We will consider system structure design for stability, needed for it elementary circuit cells additional to the textbook techniques, as well as ways to achieve unconditional system stability when component parameters vary, and when load and signal source impedance is not well defined. Examples include LDOs stable with any load capacitance, transconductors with wide (few volts) input voltage range, and multistage operational amplifiers.

    Power Dissipation in Analog Circuits
    Klaas Bult, Analog Design Consult

    Abstract.

    Power Dissipation in ADC Buidling Blocks
    Klaas Bult, Analog Design Consult

    Choosing the correct ADC architecture is the most powerful means to obtain low power dissipation. Finding expressions for the power dissipation of all ADC building blocks, is a first step in that direction. Using the same technique described in the lecture “Low Power High Efficiency OpAmp Design”, the most common ADC building block are analysed and expressions are found for power dissipation, as a function of their performance parameters.

    Power Dissipation in ADCs
    Klaas Bult, Analog Design Consult

    This lecture builds on the findings of the lecture “Power Dissipation in ADC Building Blocks” and uses the results found in that lecture to come to estimations of power dissipation of various kinds of ADC architectures, dependent on their performance. A comparison is made between these estimates and the results that can be found in published results.

    Energy Efficient Sensor Interfaces
    Taekwang Jang, ETHZ

    Abstract.

    Low-Power Frequency Reference Circuits
    Taekwang Jang, ETHZ

    A reference clock frequency is required for various applications such as digital systems, sensor interfaces, data converters, wake-up controllers, and communication circuits. High precision and low noise property of the clocks are generally preferred for the stable operation of the applications. At the same time, the power overhead of the frequency reference needs to be minimized to improve the power efficiency of the system.
    In this lecture, we discuss the fundamental background for frequency reference designs, including oscillation methodologies, power consumption requirements, and noise properties. Also, non-idealities such as temperature dependency, line sensitivity, and process variation are discussed. Finally, the latest designs and circuit techniques are introduced to understand the critical challenges and how to overcome those to achieve state-of-the-art performance.

    Energy Efficient Voltage References, Biasing in Analog Systems and Current Sources
    Vadim Ivanov, Texas Instruments

    Discussed are principles of the voltage reference generation, primarily of the bandgap voltage references, its error sources and techniques for improving accuracy: circuit techniques for low-noise bandgap generation core, feedback amplifier with chopping offset elimination, output buffer with mOhm output impedance and fast settling on load changes; layout and packaging; testing and application particulars. Also presented circuit solutions for reverse bandgap reference, operational from 0.9V supply, and reference structure and implementations with nanoampere consumption. Considered are biasing cores, power-on resets, design of the mirror trees and circuit techniques for current source generation with high impedance and wide voltage range.

    Power Management With Nanoampere Consumption and Efficient Energy Harvesting
    Vadim Ivanov, Texas Instruments

    This lecture covers power management of systems having long periods of idle time with very low power consumption alternated by active high power states, like systems with power harvesting. Circuit techniques used in ultra low power analog circuits applicable in power harvesting systems will be presented, including nanoampere biasing, voltage references with sub-volt supply, active rectifiers, comparators, oscillators and error amplifiers. Also covered design techniques and circuits of DC/DC converters, providing high efficiency at a wide range of loads down to the microampere range and battery chargers with maximum power point tracking and battery protection.

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