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Ultra Low Power Electronics and Adiabatic Solutions

Ultra Low Power Electronics and Adiabatic Solutions
Author: Hervé Fanet
Publisher: John Wiley & Sons
Total Pages: 344
Release: 2016-08-16
Genre: Computers
ISBN: 1119006554

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The improvement of energy efficiency in electronics and computing systems is currently central to information and communication technology design; low-cost cooling, autonomous portable systems and functioning on recovered energy all need to be continuously improved to allow modern technology to compute more while consuming less. This book presents the basic principles of the origins and limits of heat dissipation in electronic systems. Mechanisms of energy dissipation, the physical foundations for understanding CMOS components and sophisticated optimization techniques are explored in the first half of the book, before an introduction to reversible and quantum computing. Adiabatic computing and nano-relay technology are then explored as new solutions to achieving improvements in heat creation and energy consumption, particularly in renewed consideration of circuit architecture and component technology. Concepts inspired by recent research into energy efficiency are brought together in this book, providing an introduction to new approaches and technologies which are required to keep pace with the rapid evolution of electronics.


Emerging Devices for Low-Power and High-Performance Nanosystems

Emerging Devices for Low-Power and High-Performance Nanosystems
Author: Simon Deleonibus
Publisher: CRC Press
Total Pages: 267
Release: 2018-12-13
Genre: Science
ISBN: 0429858612

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The history of information and communications technologies (ICT) has been paved by both evolutive paths and challenging alternatives, so-called emerging devices and architectures. Their introduction poses the issues of state variable definition, information processing, and process integration in 2D, above IC, and in 3D. This book reviews the capabilities of integrated nanosystems to match low power and high performance either by hybrid and heterogeneous CMOS in 2D/3D or by emerging devices for alternative sensing, actuating, data storage, and processing. The choice of future ICTs will need to take into account not only their energy efficiency but also their sustainability in the global ecosystem.


Integrated Circuit Design

Integrated Circuit Design
Author:
Publisher:
Total Pages: 528
Release: 2002
Genre: Computer-aided design
ISBN:

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Adiabatic Logic

Adiabatic Logic
Author: Philip Teichmann
Publisher: Springer
Total Pages: 166
Release: 2011-10-30
Genre: Technology & Engineering
ISBN: 9789400723443

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Adiabatic logic is a potential successor for static CMOS circuit design when it comes to ultra-low-power energy consumption. Future development like the evolutionary shrinking of the minimum feature size as well as revolutionary novel transistor concepts will change the gate level savings gained by adiabatic logic. In addition, the impact of worsening degradation effects has to be considered in the design of adiabatic circuits. The impact of the technology trends on the figures of merit of adiabatic logic, energy saving potential and optimum operating frequency, are investigated, as well as degradation related issues. Adiabatic logic benefits from future devices, is not susceptible to Hot Carrier Injection, and shows less impact of Bias Temperature Instability than static CMOS circuits. Major interest also lies on the efficient generation of the applied power-clock signal. This oscillating power supply can be used to save energy in short idle times by disconnecting circuits. An efficient way to generate the power-clock is by means of the synchronous 2N2P LC oscillator, which is also robust with respect to pattern-induced capacitive variations. An easy to implement but powerful power-clock gating supplement is proposed by gating the synchronization signals. Diverse implementations to shut down the system are presented and rated for their applicability and other aspects like energy reduction capability and data retention. Advantageous usage of adiabatic logic requires compact and efficient arithmetic structures. A broad variety of adder structures and a Coordinate Rotation Digital Computer are compared and rated according to energy consumption and area usage, and the resulting energy saving potential against static CMOS proves the ultra-low-power capability of adiabatic logic. In the end, a new circuit topology has to compete with static CMOS also in productivity. On a 130nm test chip, a large scale test vehicle containing an FIR filter was implemented in adiabatic logic, utilizing a standard, library-based design flow, fabricated, measured and compared to simulations of a static CMOS counterpart, with measured saving factors compliant to the values gained by simulation. This leads to the conclusion that adiabatic logic is ready for productive design due to compatibility not only to CMOS technology, but also to electronic design automation (EDA) tools developed for static CMOS system design.


Conference Proceedings

Conference Proceedings
Author:
Publisher:
Total Pages: 1036
Release: 2001
Genre: Electric circuits
ISBN:

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Ultra Low Energy Computing Using Adiabatic Switching Principle

Ultra Low Energy Computing Using Adiabatic Switching Principle
Author: Yibin Ye
Publisher:
Total Pages: 52
Release: 1995
Genre: Adiabatic demagnetization
ISBN:

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Abstract: "This paper presents a new family of logic gates for ultra low energy computing using pulsed power CMOS logic. The logic gates use the principles of adiabatic switching principle and results show that in typical cases 90% of the energy can be recovered with operating frequency around 1MHz. Constant capacitance condition is enforced in our designs so that signals' energy can be efficiently recycled in the chip. We also present a detailed analysis and modeling of energy dissipation. The models were experimentally validated using the circuit simulator SPICE. We also simulated a serial adder (mod 2) implemented using the reversible logic principle. The design can recover 85% of energy while operating at a frequency of 1.67MHz. For a naturally reversible buffer chain, 95% of energy can be recovered at 1.1 MHz."


1994 IEEE Symposium on Low Power Electronics

1994 IEEE Symposium on Low Power Electronics
Author: John H. Wuorinen
Publisher: Institute of Electrical & Electronics Engineers(IEEE)
Total Pages: 112
Release: 1994
Genre: Power electronics
ISBN:

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