| Literature DB >> 33900774 |
Melissa Bosch1, Maxim R Shcherbakov2, Kanghee Won3, Hong-Seok Lee3, Young Kim3, Gennady Shvets2.
Abstract
Compact varifocal lenses are essential to various imaging and vision technologies. However, existing varifocal elements typically rely on mechanically actuated systems with limited tuning speeds and scalability. Here, an ultrathin electrically controlled varifocal lens based on a liquid crystal (LC) encapsulated dielectric metasurface is demonstrated. Enabled by the field-dependent LC anisotropy, applying a voltage bias across the LC cell modifies the local phase response of the silicon meta-atoms, in turn modifying the metalens focal length. In a numerical implementation, a voltage-actuated metalens with continuous zoom and up to 20% total focal shift is demonstrated. The LC-based metalens concept is experimentally verified through the design and fabrication of a bifocal metalens that facilitates high-contrast switching between two discrete focal lengths upon application of a 9.8 Vpp voltage bias. Owing to their ultrathin thickness and adaptable design, LC-driven dielectric metasurfaces open new opportunities for compact varifocal lensing in a diversity of modern imaging applications.Entities:
Keywords: Metalens; design and optimization; liquid crystals; tunable optics
Year: 2021 PMID: 33900774 DOI: 10.1021/acs.nanolett.1c00356
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189