Metamaterials for Perfect Absorption - Comprehensive Technical
Metamaterials for Perfect Absorption - Comprehensive Technical
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In this review of Metamaterials for Perfect Absorption, the book is presented as a focused technical resource for engineers, graduate students and researchers working on electromagnetic absorbers. The bottom line is straightforward: this volume offers a detailed synthesis of theory, design approaches and fabrication methods for metamaterial-based perfect absorbers, making it most valuable for readers who need a rigorous reference rather than a casual primer. It is best purchased for research or course use where the fundamental working principles and practical development of MMPAs are required.
Key Features
- Comprehensive historical overview: A succinct history of metamaterial-based perfect absorbers places modern developments in context and highlights key experimental milestones.
- Theoretical foundation: Clear discussion of the theoretical background explains how MMPAs operate and the physics that enable near-perfect absorption across frequencies.
- Design by frequency band: Practical guidance on designing absorbers tailored to specific electromagnetic wave frequencies shows how behavior changes with operating band.
- Fabrication and characterization: Methods for producing and measuring MMPAs are presented so readers can translate designs into tested prototypes.
- Performance analysis: A focused account of performance characteristics, including phenomena like electromagnetically-induced transparency, informs selection and optimization.
Who It's For
This book is aimed at graduate students, academic researchers and practicing engineers in materials science, electrical engineering and applied physics who need a rigorous, technical treatment of metamaterial absorbers. It suits readers who already understand basic electromagnetics and want to apply that knowledge to design and fabricate MMPAs.
It is less suitable for general readers or undergraduates without a solid background, and those seeking a broad survey of metamaterials beyond absorber applications should look for a more introductory or wider-ranging text.
Pros & Cons
Pros
- Thorough theoretical coverage provides a strong grounding in the fundamental working principles behind perfect absorption.
- Practical design guidance by operating frequency helps bridge theory to real-world device choices.
- Detailed fabrication and characterization sections make it a useful lab companion for prototype work.
Cons
- Not a general introductory book; readers without prior electromagnetics may find some chapters dense.
Specifications
| Title | Metamaterials for Perfect Absorption |
| Series | Springer Series in Materials Science, 236 |
| Authors / Editors | Young Pak Pak Lee, Joo Yull Rhee, Young Joon Yoo, Ki Won Kim |
| Subject | Metamaterial-based perfect absorbers (MMPAs) |
| Focus | Theory, design, fabrication and characterization of MMPAs |
| Key topics | History, theoretical background, frequency-specific design, fabrication, characterization |
Our Verdict
Metamaterials for Perfect Absorption is a concentrated, technical reference that excels when used as a research or course text for those working on electromagnetic absorbers. Its combination of theory, frequency-based design guidance and fabrication methods makes it good value for specialists who need a single-volume resource to move from concept to prototype.
Frequently Asked Questions
Does this book cover fabrication methods?
Yes. The book includes methods for fabricating and characterizing metamaterial-based perfect absorbers so readers can implement and test designs.
Is this suitable for beginners?
It is written at a technical level; beginners without a solid background in electromagnetics may find it challenging and should consider an introductory text first.
What scope does the book cover?
The book covers historical milestones, theoretical foundations, frequency-specific design strategies, fabrication techniques and performance characteristics of MMPAs.
Editor's Take
A focused technical reference that combines theoretical foundations, frequency-based design guidance and fabrication methods, ideal for researchers and engineers developing metamaterial perfect absorbers.

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