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Complete absorption of electromagnetic waves is paramount in today's applications, ranging from photovoltaics to cross-talk prevention into sensitive devices. In this context, we use a genetic algorithm (GA) strategy to optimize absorption properties of periodic arrays of truncated square-based pyramids made of alternating stacks of metal/dielectric layers. We target ultra-broadband quasi-perfect absorption of normally incident electromagnetic radiations in the visible and near-infrared ranges (wavelength comprised between 420 and 1600 nm). We compare the results one can obtain by considering one, two or three stacks of either Ni, Ti, Al, Cr, Ag, Cu, Au or W for the metal, and poly(methyl methacrylate) (PMMA) for the dielectric. More than 10 configurations of geometrical parameters are explored and reduced to a few optimal ones. This extensive study shows that Ni/PMMA, Ti/PMMA, Cr/PMMA and W/PMMA provide high-quality solutions with an integrated absorptance higher than 99% over the considered wavelength range, when considering realistic implementation of these ultra-broadband perfect electromagnetic absorbers. Robustness of optimal solutions with respect to geometrical parameters is investigated and local absorption maps are provided. Moreover, we confirm that these optimal solutions maintain quasi-perfect broadband absorption properties over a broad angular range when changing the inclination of the incident radiation. The study also reveals that noble metals (Au, Ag, Cu) do not provide the highest performance for the present application.
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http://dx.doi.org/10.1364/OE.442405 | DOI Listing |
Dalton Trans
September 2025
Department of Physics and Electronic Engineering, Jinzhong University, Jinzhong 030619, China.
To solve the problems of single absorption function and the complex structure of terahertz absorbers, this study proposes a terahertz (THz) absorber based on vanadium dioxide (VO) driven by electric dipole resonance, which can achieve wideband and narrowband absorption conversion. Simulation results indicate that in the narrowband absorption mode, two narrowband absorption peaks were observed at 14.6 THz and 16.
View Article and Find Full Text PDFNanoscale Adv
June 2025
Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences Hangzhou 310024 China.
This paper presents a multifunctional terahertz device based on a dual-tunable structure incorporating graphene and vanadium oxide (VO). This device enables the switching between narrowband perfect absorption and ultra-broadband performance through the phase transition characteristics of VO and the adjustment of graphene Fermi level. Simulation results demonstrate that when VO is in its metallic state, the THz device exhibits ultra-broadband absorption, achieving a high absorption rate exceeding 0.
View Article and Find Full Text PDFPhys Chem Chem Phys
April 2025
School of Semiconductor and Physics, North University of China, Taiyuan, China.
The paper proposes an ultrathin and tunable ultrawideband plasmonic terahertz absorber based on vanadium dioxide (VO) phase transition metamaterials, with a thickness of only 5.98 micrometers, to address the current issues of insufficient frequency tunability and limited bandwidth coverage in terahertz absorbers. The absorber features a multilayer composite structure consisting of a bottom Au metal layer, a SiO dielectric layer, a VO layer, an upper SiO layer, and a patterned VO layer on the surface.
View Article and Find Full Text PDFSensors (Basel)
February 2025
Regional Center of Advanced Technologies and Materials, Czech Advanced Technology and Research Institute (CATRIN), Palacký University Olomouc, 779 00 Olomouc, Czech Republic.
This paper proposes a switchable and tunable terahertz metamaterial absorber utilizing a graphene-VO layered structure. The design employs reconfigurable seven-layer architecture from top to bottom as (topaz/VO/topaz/Si/graphene/topaz/Au). CST software 2018 was used to simulate the absorption properties of terahertz waves (0-14 THz).
View Article and Find Full Text PDFAdv Mater
March 2025
Hangzhou International Innovation Institute, Beihang University, Hangzhou, 311115, P. R. China.
The structural disorder of the black butterfly assists in capturing sunlight across a wider spectral and angular range, injecting infinite vitality for omnidirectional and stimuli-responsive wave-absorbing materials. Here, the disordered micro-pores responding to terahertz (THz) waves through electromagnetic simulations, and then prepared via ice templating technology are analyzed and optimized. The customized disordered aerogel makes possible perfect terahertz response property with incidence-angle-insensitive and ultra-broadband.
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