| Literature DB >> 33372805 |
Jingang Li1, Mingsong Wang1,2, Zilong Wu1, Huanan Li2, Guangwei Hu2,3, Taizhi Jiang4, Jianhe Guo1, Yaoran Liu1,5, Kan Yao1, Zhihan Chen1, Jie Fang1, Donglei Fan1, Brian A Korgel4, Andrea Alù2, Yuebing Zheng1,5.
Abstract
Subwavelength nanostructures with tunable compositions and geometries show favorable optical functionalities for the implementation of nanophotonic systems. Precise and versatile control of structural configurations on solid substrates is essential for their applications in on-chip devices. Here, we report all-solid-phase reconfigurable chiral nanostructures with silicon nanoparticles and nanowires as the building blocks in which the configuration and chiroptical response can be tailored on-demand by dynamic manipulation of the silicon nanoparticle. We reveal that the optical chirality originates from the handedness-dependent coupling between optical resonances of the silicon nanoparticle and the silicon nanowire via numerical simulations and coupled-mode theory analysis. Furthermore, the coexisting electric and magnetic resonances support strong enhancement of optical near-field chirality, which enables label-free enantiodiscrimination of biomolecules in single nanostructures. Our results not only provide insight into the design of functional high-index materials but also bring new strategies to develop adaptive devices for photonic and electronic applications.Entities:
Keywords: biosensing; dielectric materials; optical coupling; optical nanofabrication; reconfigurable chiral metamaterials
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Year: 2020 PMID: 33372805 PMCID: PMC7855985 DOI: 10.1021/acs.nanolett.0c03957
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189