Interference theory of metamaterial perfect absorbers
arXiv:1112.5168 · doi:10.1364/OE.20.007165
Abstract
The impedance matching in metamaterial perfect absorbers has been believed to involve and rely on magnetic resonant response, with a direct evidence from the anti-parallel directions of surface currents in the metal structures. Here we present a different theoretical interpretation based on interferences, which shows that the two layers of metal structure in metamaterial absorbers are linked only by multiple reflections with negligible near-field interactions or magnetic resonances. This is further supported by the out-of-phase surface currents derived at the interfaces of resonator array and ground plane through multiple reflections and superpositions. The theory developed here explains all features observed in narrowband metamaterial absorbers and therefore provides a profound understanding of the underlying physics.
8 pages, 4 figures, submitted to Optics Express
References in corpus (5)
- A Perfect Metamaterial Absorber
- A metamaterial absorber for the terahertz regime: Design, fabrication and characterization
- Wide-angle perfect absorber/thermal emitter in the THz regime
- Wide-angle infrared absorber based on negative index plasmonic metamaterial
- Planar Metamaterials for Antireflection Coating
Cited by in corpus (27)
- A review of metasurfaces: physics and applications
- Terahertz metamaterials for linear polarization conversion and anomalous refraction
- A perfect absorber made of a graphene micro-ribbon metamaterial
- Metasurface Broadband Solar Absorber
- A Circuit-based Model for the Interpretation of Perfect Metamaterial Absorbers
- High-Temperature Refractory Metasurfaces for Solar Thermophotovoltaic Energy Harvesting
- Theory of metasurface based perfect absorbers
- Impact of resonator geometry and its coupling with ground plane on ultrathin metamaterial perfect absorbers
- Multi-spectral near perfect metamaterial absorbers using spatially multiplexed plasmon resonance metal square structures
- Directional perfect absorption using deep subwavelength low permittivity films
- Nonlinear terahertz devices utilizing semiconducting plasmonic metamaterials
- Reflection compensation mediated by electric and magnetic resonances of all-dielectric metasurfaces
- Controlling thermal emission with metasurfaces and its applications
- Perfect interference-less absorption at infrared frequencies by a van der Waal's crystal
- A unified theory for perfect absorption in ultra-thin absorptive films with constant tangential electric or magnetic fields
- Performance analysis of photodetectors based on 2D materials and heterostructures
- Multi-resonant silver nano-disk patterned thin film hydrogenated amorphous silicon solar cells for Staebler-Wronski effect compensation
- Ultra-fast Graphene-Plasmonic Hybrid Metasurface Saturable Absorber with Low Saturation Fluence
- Mahler measure of polynomials defining genus 2 and 3 curves
- Network Coexistence Analysis of RIS-Assisted Wireless Communications
- Constructive and Destructive Interference of Kerker-type Scattering in an Ultra-thin Silicon Huygens Metasurface
- Simplified equivalent circuit approach for designing time-domain responses of waveform-selective metasurfaces
- Calculating the electromagnetic characteristics of bifacial optical nanomaterials
- Terahertz Saturable Absorption in Superconducting Metamaterials
- Near-Perfect Broadband Infrared Metamaterial Absorber Utilizing Nickel
- Modelling the longitudinal intensity pattern of diffraction resistant beams in stratified media
- Supercavity Modes in Stacked Identical Mie-resonant Metasurfaces