| Literature DB >> 28225176 |
Zhe Liu1, Shuo Du1, Ajuan Cui2, Zhancheng Li3, Yuancheng Fan4, Shuqi Chen3, Wuxia Li1, Junjie Li1, Changzhi Gu1.
Abstract
With unusual electromagnetic radiation properties and great application potentials, optical toroidal moments have received increasing interest in recent years. 3D metamaterials composed of split ring resonators with specific orientations in micro-/nanoscale are a perfect choice for toroidal moment realization in optical frequency considering the excellent magnetic confinement and quality factor, which, unfortunately, are currently beyond the reach of existing micro-/nanofabrication techniques. Here, a 3D toroidal metamaterial operating in mid-infrared region constructed by metal patterns and dielectric frameworks is designed, by which high-quality-factor toroidal resonance is observed experimentally. The toroidal dipole excitation is confirmed numerically and further demonstrated by phase analysis. Furthermore, the far-field radiation intensity of the excited toroidal dipoles can be adjusted to be predominant among other multipoles by just tuning the incident angle. The related processing method expands the capability of focused ion beam folding technologies greatly, especially in 3D metamaterial fabrication, showing great flexibility and nanoscale controllability on structure size, position, and orientation.Entities:
Keywords: 3D; far-field; folded metamaterials; radiation intensity; toroidal dipoles
Year: 2017 PMID: 28225176 DOI: 10.1002/adma.201606298
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849