Hierarchical self-assembly of nanoparticles for optical metamaterials
Abstract
Hierarchical self-assembly arranges nanostructures at different length scales. It gradually becomes an effective method of fabricating artificial metamaterials from composite nanostructures tailored for a particular response. Hierarchical self-assembly overcomes shortcomings of "top-down" methods by significantly reducing fabrication time and making it possible to form bulk materials. Here we report an application of hierarchical self-assembly of metal nanoparticles for the creation of the first isotropic optical metamaterial with strong artificial magnetism in blue light. We have used colloidal self-assembly to create artificial "nanomolecules" that generate the desired magnetic response and microfluidic self-assembly to produce a bulk metastructure. We demonstrate that the magnetic response of the final material is accurately described by an isotropic magnetic permeability that satisfies the principle of locality. Our approach unlocks the fabrication of large volumes of composite nanomaterials. Moreover, the spatial disorder inherent to this "bottom-up" method holds the key to solving the non-locality problem. The technique can be readily extended to the future generations of low-loss optical metamaterials made of dielectric nano-blocks to bypass the limitations of optical losses associated with plasmonic resonances in noble metals.
Keywords
Cite
@article{arxiv.1606.02105,
title = {Hierarchical self-assembly of nanoparticles for optical metamaterials},
author = {Sergio Gomez-Graña and Aurélie Le Beulze and Mona Treguer-Delapierre and Stéphane Mornet and Etienne Duguet and Eftychia Grana and Eric Cloutet and Georges Hadziioannou and Jacques Leng and Jean-Baptiste Salmon and Vasyl G. Kravets and Alexander N. Grigorenko and Naga A. Peyyety and Virginie Ponsinet and Philippe Richetti and Alexandre Baron and Daniel Torrent and Philippe Barois},
journal= {arXiv preprint arXiv:1606.02105},
year = {2016}
}
Comments
Main article:10 pages, 4 figures. Supplementary information: 11 pages, 7 figures