Proceedings

EPJ D Highlight - Testing a perfect absorber metamaterial

The schematic picture of a proposed perfect absorber metamaterial

The proposed metamaterial could have a wide range of applications, from sensing to stealth technology

Metamaterials are a type of artificial material which, as the prefix “meta” – meaning in Greek “after” or “beyond” – indicates, demonstrate electromagnetic properties and other characteristics not found in nature.

As a result of these characteristics, including negative refraction and perfect lensing and cloaking, which arise from the lattice design composition of these substances rather than the materials that actually comprise them, metamaterials have become a hot research topic.

In particular, materials scientists are actively hunting for metamaterials that are “perfect absorbers” of electromagnetic radiation with controllable resonance characteristics that lead to their wide usage in applications as varied as solar cells, thermal radiation imaging, sensing technology, and even stealth technology.

In a new paper in EPJ D, Shahzad Anwar, a researcher at the Department of Physics, Islamia College Peshawar, Pakistan, and his colleagues document the proposed design of a triple-band perfect metamaterial absorber. The new metamaterial could have applications in sensors, filters, and in stealth technology.

“The aim of this work is to achieve a multiband metamaterial absorber and to improve the sensing performance of the multiple band absorbers for their potential applications in optical filters and sensing devices,” the authors write. “The novelty of our work has two major aspects. Firstly, it simplifies the design structure of multiband metamaterial absorbers in the terahertz region. Secondly, it enhances the sensing performance of multiband metamaterial absorbers, which is highly beneficial in improving the design [of] sensing devices.”

The team’s proposed design consists of a gold metallic array, a metallic layer, and a dielectric spacer between the two. Testing by the team demonstrated that the metamaterial perfect absorber has three resonant modes at frequencies 1.655 THz, 1.985 THz, and 2.86 THz, in which an average absorption rate close to 95% was achieved.

The authors also found that by varying the structural parameters of their proposed material, the frequencies of its resonant modes can be tuned.

“These results show that high-order resonance response is much greater in terms of sensing performance than that of the fundamental mode resonance,” they added. “In other words, these studies provide us with a new way to design high-sensitivity sensors.”

Anwar, S., Khan, Q., Ali, G. et al. Triple-band terahertz metamaterial absorber with enhanced sensing capabilities. Eur. Phys. J. D 77, 69 (2023). https://doi.org/10.1140/epjd/s10053-023-00658-w

This was our first experience of publishing with EPJ Web of Conferences. We contacted the publisher in the middle of September, just one month prior to the Conference, but everything went through smoothly. We have had published MNPS Proceedings with different publishers in the past, and would like to tell that the EPJ Web of Conferences team was probably the best, very quick, helpful and interactive. Typically, we were getting responses from EPJ Web of Conferences team within less than an hour and have had help at every production stage.
We are very thankful to Solange Guenot, Web of Conferences Publishing Editor, and Isabelle Houlbert, Web of Conferences Production Editor, for their support. These ladies are top-level professionals, who made a great contribution to the success of this issue. We are fully satisfied with the publication of the Conference Proceedings and are looking forward to further cooperation. The publication was very fast, easy and of high quality. My colleagues and I strongly recommend EPJ Web of Conferences to anyone, who is interested in quick high-quality publication of conference proceedings.

On behalf of the Organizing and Program Committees and Editorial Team of MNPS-2019, Dr. Alexey B. Nadykto, Moscow State Technological University “STANKIN”, Moscow, Russia. EPJ Web of Conferences vol. 224 (2019)

ISSN: 2100-014X (Electronic Edition)

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