| Literature DB >> 27251768 |
Shiwei Shu1,2,3, Yawen Zhan1,2, Chris Lee1,2, Jian Lu3,4, Yang Yang Li1,2,3.
Abstract
Absorber is an important component in various optical devices. Here we report a novel type of asymmetricEntities:
Year: 2016 PMID: 27251768 PMCID: PMC4890024 DOI: 10.1038/srep27061
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic illustration of the proposed lossy Bragg stack.
Figure 2DoA (the degree of asymmetry) dependence on u and n, when v = 1.1, 1.3, and 1.5.
Figure 3Reflection, Transmission and Absorption spectra of typical lossy Bragg stack when light propagate from “left” to “right” (a) and from “right” to “left” (b). Absorption spectra of the typical lossy Bragg stack simulated using the TMM (c) and FDTD method (d). The degree of asymmetry (DoA) and its dB value [dB = 10lg(DoA)] calculated using the TMM are shown in (e). The DoA peak appears to be sensitive to the refractive indexes of the sub-layers. The spectra in (f ) shows the shift of the DoA peak when ñ and ñ are changed from 4.90 + 0.049 i and 5.30 + 0.053 i (“original”) to 4.95 + 0.049 i and 5.35 + 0.053 i (“after change”), respectively.
Figure 4Electric field distribution (at λ = 500 nm) of the typical lossy Bragg stack for light propagating from “left” to “right” (upper) and from “right” to “left” (lower).
Figure 5Absorption radar diagram of the typical lossy Bragg structure for the TE and TM polarizations at λ = 500 nm with light propagating from two directions.
Figure 6Absorption spectra with different Fano profile of the lossy Bragg stack with the corresponding top sub-layer thickness marked in the legend.
The spectra were simulated using the TMM. The drawing illustrates the corresponding structures.
Figure 7Absorption spectra (a) and DoA (b) of the lossy Bragg stacks based on Pd, Ni, Cr, and Pt (p = 0.4, p = 0.3, d = d = 100 nm, and m = 15).
Figure 8For the lossy Bragg stack made from Al-embedded Al2O3 (Al vol% = 70%, 75% and sublayer thickness = 73.5, 70 nm for Sublayers A and B, respectively, refractive index of Al2O3 = 1.76, and period number = 100): (a) real part and imaginary part of the effective complex refractive index for Sublayers A and B; (b) absorption spectra simulated using the TMM; (c) Degree of Asymmetry (DoA) and its dB value [dB = 10lg(DoA)] calculated using the TMM.