| Literature DB >> 33710897 |
Dasom Kim1,2, Hyeong Seok Yun1,2, Bamadev Das2, Jiyeah Rhie2, Parinda Vasa3, Young-Il Kim4, Sung-Hoon Choa4, Namkyoo Park5, Dukhyung Lee1, Young-Mi Bahk6, Dai-Sik Kim1,2.
Abstract
One of the most straightforward methods to actively control optical functionalities of metamaterials is to apply mechanical strain deforming the geometries. These deformations, however, leave symmetries and topologies largely intact, limiting the multifunctional horizon. Here, we present topology manipulation of metamaterials fabricated on flexible substrates by mechanically closing/opening embedded nanotrenches of various geometries. When an inner bending is applied on the substrate, the nanotrench closes and the accompanying topological change results in abrupt switching of metamaterial functionalities such as resonance, chirality, and polarization selectivity. Closable nanotrenches can be embedded in metamaterials of broadband spectrum, ranging from visible to microwave. The 99.9% extinction performance is robust, enduring more than a thousand bending cycles. Our work provides a wafer-scale platform for active quantum plasmonics and photonic application of subnanometer phenomena.Keywords: active metamaterials; active quantum plasmonics; closable nanotrench; topology-changing metamaterials
Year: 2021 PMID: 33710897 DOI: 10.1021/acs.nanolett.1c00025
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189