Scalable, ultra-resistant structural colors based on network metamaterials
Author(s) -
Henning Galinski,
Gaël Favraud,
Hao Dong,
Juan Sebastian Totero Gongora,
Grégory Favaro,
M. Döbeli,
Ralph Spolenak,
Andrea Fratalocchi,
Federico Capasso
Publication year - 2016
Publication title -
light science and applications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.104
H-Index - 96
eISSN - 2095-5545
pISSN - 2047-7538
DOI - 10.1038/lsa.2016.233
Subject(s) - structural coloration , metamaterial , camouflage , materials science , ranging , scalability , computer science , dielectric , nanotechnology , nanoscopic scale , biomimetics , realization (probability) , fabrication , nanomaterials , optoelectronics , photonic crystal , artificial intelligence , telecommunications , pathology , database , medicine , statistics , alternative medicine , mathematics
Structural colors have drawn wide attention for their potential as a future printing technology for various applications, ranging from biomimetic tissues to adaptive camouflage materials. However, an efficient approach to realize robust colors with a scalable fabrication technique is still lacking, hampering the realization of practical applications with this platform. Here, we develop a new approach based on large-scale network metamaterials that combine dealloyed subwavelength structures at the nanoscale with lossless, ultra-thin dielectric coatings. By using theory and experiments, we show how subwavelength dielectric coatings control a mechanism of resonant light coupling with epsilon-near-zero regions generated in the metallic network, generating the formation of saturated structural colors that cover a wide portion of the spectrum. Ellipsometry measurements support the efficient observation of these colors, even at angles of 70°. The network-like architecture of these nanomaterials allows for high mechanical resistance, which is quantified in a series of nano-scratch tests. With such remarkable properties, these metastructures represent a robust design technology for real-world, large-scale commercial applications.
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