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Titlebook: Atomic-Scale Electronics Beyond CMOS; Mircea Dragoman,Daniela Dragoman Book 2021 Springer Nature Switzerland AG 2021 2D Materials for Quan

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发表于 2025-3-21 19:53:48 | 显示全部楼层 |阅读模式
期刊全称Atomic-Scale Electronics Beyond CMOS
影响因子2023Mircea Dragoman,Daniela Dragoman
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发行地址Introduces new solutions to continue nanoelectronics after Moore‘s law, which is approaching its end.By two experts who helped the development of new materials and devices at the boundaries of Moore‘s
图书封面Titlebook: Atomic-Scale Electronics Beyond CMOS;  Mircea Dragoman,Daniela Dragoman Book 2021 Springer Nature Switzerland AG 2021 2D Materials for Quan
影响因子.This book explores emerging topics in atomic- and nano-scale electronics after the era of Moore’s Law, covering both the physical principles behind, and technological implementations for many devices that are now expected  to become  key elements of the future of nanoelectronics beyond traditional complementary metal-oxide semiconductors (CMOS). Moore’s law is not a physical law itself, but rather a visionary prediction that has worked well for more than 50 years but is rapidly coming to its end as the gate length of CMOS transistors approaches the length-scale of only a few atoms. Thus, the key question here is: “What is the future for nanoelectronics beyond CMOS?” .The possible answers are found in this book. Introducing novel quantum devices such as atomic–scale electronic devices, ballistic devices, memristors, superconducting devices, this book also presents the reader with the physical principles underlying new ways of computing, as well as their practical implementation. Topics such as quantum computing, neuromorphic computing are highlighted here as some of the most promising candidates for ushering in a new era of atomic-scale electronics beyond CMOS..
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Book 2021and technological implementations for many devices that are now expected  to become  key elements of the future of nanoelectronics beyond traditional complementary metal-oxide semiconductors (CMOS). Moore’s law is not a physical law itself, but rather a visionary prediction that has worked well for
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from micro to nanoscale, an example being circuits based on process technologies developed for FinFETs at 10 nm node. Going bellow with scaling, we reach the atomic scale, where the first devices based on single-atom-like structures such as single dopants are reported and analyzed.
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s, also known as atomically thick materials or 2D materials. These include the most widespread 2D materials: graphene and transition metals chalcogenides (TMDs). The chapter continues then with single dopants in semiconductors, which are used in atomic electronics, and dangling bonds used in logic gates.
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