Atomic-Scale Electronics Beyond CMOS - Future Nanoelectronics
Atomic-Scale Electronics Beyond CMOS - Future Nanoelectronics
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In this review of Atomic-Scale Electronics Beyond CMOS, the bottom line is clear: this book is for engineers, researchers, and advanced students who need a focused, physics-first guide to post-CMOS device concepts. Mircea Dragoman and Daniela Dragoman present a compact, technically minded examination of how electronic devices behave when device dimensions reach atomic and nano scales, making it valuable for anyone exploring quantum and ballistic device ideas. The single biggest reason to buy is its concentrated treatment of physical principles and technological implementations that point to realistic paths beyond traditional complementary metal-oxide semiconductors.
Key Features
- Post-CMOS focus: Explains why Moore's law is ending and frames the key questions guiding research into alternatives to CMOS devices.
- Physical principles: Covers foundational physics for atomic-scale and nano-scale electronics so readers can understand device behavior at few-atom gate lengths.
- Device variety: Introduces novel quantum and atomic-scale device concepts that could serve as components in future nanoelectronic systems.
- Technology implementations: Describes practical considerations and technological implementations that link theory to potential real-world devices.
- Compact synthesis: Offers a concise, focused survey useful for researchers who want targeted insight without unrelated background material.
Who It's For
The book is best suited for electrical engineers, device physicists, and graduate students working on semiconductor research, quantum devices, or nanoscale fabrication who need a clear overview of directions beyond CMOS. It serves as a technical briefing that complements more comprehensive textbooks by emphasizing current research problems and device-level thinking.
Readers seeking an introductory text for general electronics or a hands-on lab manual for circuit design should look elsewhere; this is not a beginner's primer or a step-by-step fabrication handbook, but rather a focused examination of the physics and concepts driving future nanoelectronics.
Pros & Cons
Pros
- Concentrated discussion of why Moore's law is ending helps frame research priorities for post-CMOS development.
- Emphasis on physical principles provides readers with a solid conceptual foundation for atomic-scale device behavior.
- Coverage of novel quantum and ballistic device concepts links theoretical ideas to potential technological implementations.
Cons
- Lacks entry-level tutorials, so newcomers without prior device or physics background may find parts dense.
Specifications
| Title | Atomic-Scale Electronics Beyond CMOS |
| Authors | Mircea Dragoman, Daniela Dragoman |
| Scope | Atomic- and nano-scale electronics, post-Moore's law |
| Main topics | Quantum devices, ballistic transport, technological implementations |
| Intended audience | Researchers, graduate students, device engineers |
| Approach | Physics-first analysis with implementation discussion |
Our Verdict
This book is a compact, well-focused resource for professionals and advanced students who need to understand the physical principles and realistic device concepts that could replace CMOS. Its value lies in connecting theory with technological direction, making it a worthwhile read for anyone planning research or development in nanoelectronics beyond traditional semiconductor scaling.
Frequently Asked Questions
Does this book explain why Moore's law is ending?
Yes, it presents the schaal and physical arguments showing how gate lengths approaching atomic dimensions challenge continued CMOS scaling.
Is this suitable for beginners?
No, the book assumes prior exposure to semiconductor device concepts and is aimed at researchers and advanced students rather than newcomers.
Does it include practical device implementations?
Yes, the authors discuss technological implementations and how novel quantum and atomic-scale devices might be realized.
Editor's Take
A compact, physics-first guide for researchers and advanced students exploring quantum and atomic-scale devices as realistic alternatives to CMOS; valuable for connecting theory to technological direction.

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