2016
DOI: 10.1002/adom.201600196
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Displacement Current Mediated Resonances in Terahertz Metamaterials

Abstract: devices, their relatively low Q-factors (typically below 20 of single-ring resonator MMs) [ 11,13 ] compared to micro-and nanoscale mechanical resonators (typically between 10 4 and 10 7 ) [ 14 ] impose a limitation on their sensitivities.One of the approaches to increase the Q-factor of MMs is to reduce the energy losses of MMs and substrates by optimizing the material properties and structures of the MMs. [ 15 ] There are typically three main energy loss mechanisms: Ohmic loss of MMs, [ 16 ] dielectric loss … Show more

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Cited by 13 publications
(8 citation statements)
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References 37 publications
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“…Other viable applications of the 3D cubic nanosensor include high sensitivity detection and analysis of biological molecules and chemical species through shift in conventional LC or plasmonic resonances. However, 2D micro‐ and nanoscale biological sensors possess a major disadvantage for performing measurements under in vivo conditions as a result of the highly directional response . Attempts to fabricate polarization invariant (isotropic) SRR have been primarily limited due to the use of planar substrates which can achieve only partial isotropy .…”
Section: Man‐made 3d Sensors At Nano/microscalesmentioning
confidence: 99%
See 1 more Smart Citation
“…Other viable applications of the 3D cubic nanosensor include high sensitivity detection and analysis of biological molecules and chemical species through shift in conventional LC or plasmonic resonances. However, 2D micro‐ and nanoscale biological sensors possess a major disadvantage for performing measurements under in vivo conditions as a result of the highly directional response . Attempts to fabricate polarization invariant (isotropic) SRR have been primarily limited due to the use of planar substrates which can achieve only partial isotropy .…”
Section: Man‐made 3d Sensors At Nano/microscalesmentioning
confidence: 99%
“…The 0D, 1D, 2D, and 3D objects are represented by morphological features of the point, line, plane, and multifaced polyhedron, respectively as illustrated in Figure . The 0D to 3D sensors are found to have point‐like (e.g., nanoparticles, quantum dots), linear (e.g., nanowire, carbon nanotubes), planar (e.g., thin film structures), and multifaceted sensing elements (e.g., cube, pyramids), respectively . It is worth noting that 3D sensors equip a unique sensing capability which cannot be realized with 0D, 1D, and 2D sensing systems.…”
Section: Introductionmentioning
confidence: 99%
“…Recently, Fano‐type spectral response in plasmonic nanostructures and metamaterials have attracted considerable attention due to its superior capability to manipulate various characteristics of the Fano resonance in a broad frequency range, which is applicable for practical applications including chemical or biosensing, nonlinear optics, slow light device, and spectroscopy . Numerous metallic or dielectric metamateirals have been designed to demonstrate Fano resonances using a common method of breaking the structural symmetry of nanostructures, such as split‐ring resonators, asymmetric double bars, nanoparticle clusters, dolmen structures, and hybridized structures …”
Section: Introductionmentioning
confidence: 99%
“…A major limiting factor in the further implementation and commercialization of these devices have been disadvantages arising from their low quality factor leading to a low sensitivity. However, research into design of the conventional C-shaped SRR using nanopillar 45 , asymmetry of the split 46 , and modification of coupling within SRR arrays 47 have led to an increase in the quality factor by a factor of 30 and a corresponding 10 fold increase in sensitivity.
Figure 1Illustration of two- and three-dimensional split-ring resonators (SRRs) and their simulated transmission response. ( a ) A conventional, two-dimensional SRR with L = 36 µm, g = 4 µm, and a = 48 µm, that can be rotated along the X-, Y-, and Z-axis at angles θ x , θ y , θ z degrees, respectively.
…”
Section: Introductionmentioning
confidence: 99%