| Literature DB >> 22824102 |
J Octavio Estevez1, Jesús Arriaga, Antonio Mendez-Blas, Edgar Reyes-Ayona, José Escorcia, Vivechana Agarwal.
Abstract
: Theoretical demonstration and experimental evidence of photon Bloch oscillations and Wannier-Stark ladders (WSLs) in dual-periodical (DP) multilayers, based on porous silicon, are presented. An introduction of the linear gradient in refractive indices in DP structure, which is composed by stacking two different periodic substructures N times, resulted in the appearance of WSLs. Theoretical time-resolved reflection spectrum shows the photon Bloch oscillations with a period of 130 fs. Depending on the values of the structural parameters, one can observe the WSLs in the near infrared or visible region which may allow the generation of terahertz radiation with a potential applications in several fields like imaging.Entities:
Year: 2012 PMID: 22824102 PMCID: PMC3464691 DOI: 10.1186/1556-276X-7-413
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Dual-periodical multilayer structure. Schematic view of the 1D dual-periodic structure showing the layer parameters, where n and m represent the period numbers of a and b in A and B substructures, respectively; n1 and n2 are high and low refractive indexes of alternating dielectric layers in a and b; the layer thickness is d1 and d2 for a, and d3 and d4 for b, respectively.
Figure 2Scattering states map and reflectance spectra of (A B ) structure. (a) Calculated electric field intensity distribution of TM modes in (A2B4)6 structure with no refractive index gradient i.e., △n= 0 (flat miniband situation). A change of color from dark to bright corresponds to the increase in the light intensity. (b) Measured and simulated reflectance spectra of the structure. The schematic illustration of the corresponding DP structure is shown just above the scattering states map.
Figure 3Scattering states map and reflectance spectra of G(A B ) structure. (a) Calculated electric field intensity distribution of TM modes in G(A2B4)6 structure with a linear gradient in refractive index (△n = 16%). Inclined white lines are shown as indicators of the miniphotonic band inclination. One can observe the formation of the photonic WSLs confined between two minigaps. (b) Measured and simulated reflectance spectra of the structure and the input Gaussian pulse (red dotted line) in frequency domain.
Figure 4Time-resolved reflection spectra in G(A B ) structure. Calculated time-resolved reflection spectra of the G(A2B4)6 structure for incident pulse energy of (top image) E0= 809 meV (bottom image) E0= 830 meV.