| Literature DB >> 28461458 |
Tal Galfsky1,2, Jie Gu1,2, Evgenii E Narimanov3, Vinod M Menon4,2.
Abstract
Photonic crystals (PCs) have emerged as one of the most widely used platforms for controlling light-matter interaction in solid-state systems. They rely on Bragg scattering from wavelength-sized periodic modulation in the dielectric environment for manipulating the electromagnetic field. A complementary approach to manipulate light-matter interaction is offered by artificial media known as metamaterials that rely on the average response of deep-subwavelength unit cells. Here we demonstrate a class of artificial photonic media termed "photonic hypercrystals" (PHCs) that combine the large broadband photonic density of states provided by hyperbolic metamaterials with the light-scattering efficiency of PCs. Enhanced radiative rate (20×) and light outcoupling (100×) from PHCs embedded with quantum dots is observed. Such designer photonic media with complete control over the optical properties provide a platform for broadband control of light-matter interaction.Entities:
Keywords: cavity QED; light–matter interaction; metamaterial; photonic crystal; quantum dots
Year: 2017 PMID: 28461458 PMCID: PMC5441758 DOI: 10.1073/pnas.1702683114
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205