| Literature DB >> 32718074 |
Saima Kanwal1, Jing Wen1, Binbin Yu1, Xu Chen1, Dileep Kumar2, Yi Kang1, Chunyan Bai1, Saima Ubaid1, Dawei Zhang1,3.
Abstract
Metasurfaces in the ultraviolet spectrum have stirred up prevalent research interest due to the increasing demand for ultra-compact and wearable UV optical systems. The limitations of conventional plasmonic metasurfaces operating in transmission mode can be overcome by using a suitable dielectric material. A metalens holds promising wavefront engineering for various applications. Metalenses have developed a breakthrough technology in the advancement of integrated and miniaturized optical devices. However, metalenses utilizing the Pancharatnam-Berry (PB) phase or resonance tuning methodology are restricted to polarization dependence and for various applications, polarization-insensitive metalenses are highly desirable. We propose the design of a high-efficiency dielectric polarization-insensitive UV metalens utilizing cylindrical nanopillars with strong focusing ability, providing full phase delay in a broadband range of Ultraviolet light (270-380 nm). The designed metalens comprises Silicon nitride cylindrical nanopillars with spatially varying radii and offers outstanding polarization-insensitive operation in the broadband UV spectrum. It will significantly promote and boost the integration and miniaturization of the UV photonic devices by overcoming the use of Plasmonics structures that are vulnerable to the absorption and ohmic losses of the metals. The focusing efficiency of the designed metalens is as high as 40%.Entities:
Keywords: UV; broadband; dielectric; diffraction-limited; metalens; polarization insensitive
Year: 2020 PMID: 32718074 PMCID: PMC7466348 DOI: 10.3390/nano10081439
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a) Schematic view of the transmissive metalens. (b) Side view of the metalens building block. (c) Top of the metalens building block. For the designed wavelength of the metalens λ = 290 nm, the nanopillar height H = 600 nm, unit cell dimension P = 200 nm, and the nanopillar radius varies between 30 and 92 nm.
Figure 2(a) Transmission as a function of radius. (b) Phase as a function of radius. (c) Transmission as a function of wavelength at R = 36 nm. (d) Phase as a function of wavelength at R = 36 nm.
Figure 3Normalized intensity distribution of the designed UV metalens at incident UV light 270–380 nm at the x-z plane. (a) λ = 270 nm, (b) λ = 298 nm, (c) λ = 334 nm (d) λ = 380 nm. The NA of the metalens at designed wavelength λ = 290 nm is 0.86. Normalized intensity distribution of the designed UV metalens at incident UV light 270–380 nm at the x-y plane at x = y = 0. (e) λ = 270 nm, (f) λ = 298 nm, (g) λ = 334 nm (h) λ = 380 nm. The NA of the metalens at designed wavelength λ = 290 nm is 0.86.
Figure 4Normalized intensity profile of the focus spot along x-direction at respective wavelengths i.e., 270 nm, 298 nm, 334 nm and 380 nm. (a) y = 0, z = 5.3 µm, (b) y = 0, z = 4.6 µm, (c) y = 0, z = 4 µm and (d) y = 0, z = 3.1 µm.
Figure 5Focusing Efficiency of the metalens designed for the broadband UV spectrum 270–380 nm.
Summary of our results and other references.
| Reference | Material | Wavelength (nm) | Incident Light | NA |
|---|---|---|---|---|
| Guo et al. [ | AlN | 244–375 | CP | >0.1 |
| Huang et al. [ | Nb2O5 | 355 | CP | Not mentioned |
| Hu et al. [ | AlN | 234–274 | Polarization Insensitive | >0.1 |
| Zhang et al. [ | HfO2 | 325 | Polarization Insensitive | 0.6 |
| Our Work | Si3N4 | 270–380 | Polarization Insensitive | 0.86 |