Fano‐Like Resonance from Disorder Correlation in Vacancy‐Doped Photonic Crystals

Author:

Pariente Jose Angel1,Bayat Farzaneh12,Blanco Alvaro1,García‐Martín Antonio3,Pecharromán Carlos1,Marqués Manuel I.4ORCID,López Cefe15ORCID

Affiliation:

1. Instituto de Ciencia de Materiales de Madrid (ICMM) Consejo Superior de Investigaciones Científicas (CSIC) Calle Sor Juana Inés de la Cruz 3 Madrid E‐28049 Spain

2. Department of Physics Azarbaijan Shahid Madani University (ASMU) Tabriz 53751‐71379 Iran

3. Instituto de Micro y Nanotecnología (IMN‐CNM) Consejo Superior de Investigaciones Científicas (CSIC) Isaac Newton 8 (PTM), Tres Cantos Madrid E‐28760 Spain

4. Departamento de Física de Materiales & Condensed Matter Physics Center (IFIMAC) & Nicolás Cabrera Institute Universidad Autónoma de Madrid (UAM) Av. F. Tomás y Valiente Madrid 28049 Spain

5. Donostia International Physics Center P° Manuel Lardizábal 4 San Sebastián Guipuzcoa 20018 Spain

Abstract

AbstractBy preparing colloidal crystals with random missing scatterers, crystals are created where disorder is embodied as vacancies in an otherwise perfect lattice. In this special system, there is a critical defect concentration where light propagation undergoes a transition from an all but perfect reflector (for the spectral range defined by the Bragg condition), to a metamaterial exhibiting an enhanced transmission phenomenon. It is shown that this behavior can be phenomenologically described in terms of Fano‐like resonances. The results show that the Fano's parameter q experiences a sign change signaling the transition from a perfect crystal exhibiting a reflectance Bragg peak, through a state where background scattering is maximum and Bragg reflectance reaches a minimum to a point where the system reenters a low scattering state recovering ordinary Bragg diffraction. A simple dipolar model considering the correlation between scatterers and vacancies is proposed and the reported evolution of the Fano‐like scattering is explained in terms of the emerging covariance between the optical paths and polarizabilities and the effect of field enhancement in photonic crystal (PhC) defects.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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