Advanced Electromagnetics
Scope & Guideline
Exploring the Frontiers of Electromagnetic Science
Introduction
Aims and Scopes
- Electromagnetic Antenna Design:
The journal extensively covers innovative designs and enhancements in antenna technology, including MIMO, phased array, and metamaterial antennas tailored for applications in wireless communications, IoT, and 5G. - Metamaterials and Metasurfaces:
Research on the design, simulation, and application of metamaterials and metasurfaces is a core focus, exploring their unique properties for electromagnetic manipulation and filtering. - Wireless Power Transfer and Energy Harvesting:
The journal highlights advancements in wireless power transfer technologies, focusing on efficiency, design optimization, and practical applications in various fields, including industrial and consumer electronics. - Electromagnetic Wave Propagation and Scattering:
Studies on wave propagation, scattering mechanisms, and their interactions with different materials are critical, providing insights into the performance of antennas and communication systems. - Computational Electromagnetics:
The journal emphasizes the development and application of computational techniques, such as FDTD, FEM, and neural networks, for solving complex electromagnetic problems and optimizing designs. - Electromagnetic Compatibility and Shielding:
Research on electromagnetic interference (EMI) and compatibility, including the design of shielding materials and structures, is crucial for ensuring reliable performance in electronic systems.
Trending and Emerging
- 5G and Beyond Communication Technologies:
Research focused on antennas and systems for 5G and future communication networks is rapidly increasing, highlighting the need for innovative solutions to meet the demands of high-speed, reliable connectivity. - Reconfigurable and Adaptive Antenna Systems:
There is a growing interest in reconfigurable antenna systems that can adapt to changing environments and requirements, enhancing performance and versatility in communication applications. - Integration of AI and Machine Learning in Electromagnetics:
The application of artificial intelligence and machine learning techniques in electromagnetic design and analysis is emerging as a significant trend, offering new methodologies for optimization and predictive modeling. - Advanced Materials for Electromagnetic Applications:
Research on novel materials, such as metamaterials, photonic crystals, and nanomaterials, is gaining traction, focusing on their unique properties and applications in various electromagnetic devices. - Internet of Things (IoT) Applications:
As IoT continues to expand, research on antennas and communication systems specifically designed for IoT applications is becoming increasingly relevant, emphasizing miniaturization and energy efficiency.
Declining or Waning
- Traditional Electromagnetic Theory:
There has been a noticeable decrease in publications focused strictly on classical electromagnetic theory, as researchers tend to explore more applied and innovative aspects of electromagnetics. - Basic Material Characterization Techniques:
Research centered around fundamental characterization methods for materials has diminished, as more complex and integrated approaches are being favored for practical applications. - Low-frequency Electromagnetic Applications:
Studies focusing on low-frequency applications, such as RF and microwave engineering, have become less frequent, with a shift towards higher frequency applications associated with 5G and beyond. - Static Electromagnetic Field Analysis:
Publications analyzing static electromagnetic fields and their applications are declining, as dynamic and time-varying field studies gain prominence in modern research.
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