| Literature DB >> 27654281 |
Mingqian Zhang1, Tianying Wang2,3.
Abstract
In this work, a metallic probe with a sharp tip and two half-circular nanostructures on its base is introduced and investigated. The proposed design aims at improving the detection performance of a probe for scattering scanning near-field optical microscopy in terms of enhanced signal-to-noise ratio. Under the premise of processing feasibility, the structure of the probe is designed and optimized with three-dimensional finite-difference time-domain method. And then the performance and optical property of the probe are theoretically investigated and experimentally demonstrated using a scanning near-field optical microscope with aperture probe. It is indicated that a tightly confined optical field with significantly reduced far-field background can be achieved at the tip apex of the probe.Entities:
Keywords: Nanofocusing; Plasmonic probe; Scanning near-field optical microscopy; Surface plasmon polariton
Year: 2016 PMID: 27654281 PMCID: PMC5031571 DOI: 10.1186/s11671-016-1619-y
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic top view (a) and front view (b) of the designed s-SNOM probe
Fig. 2Field intensity distribution variation with right slot radius. a–h Horizontal section at 5 nm below the probe apex, right slot radius caries from 1.50 to 2.2 μm. Normalized x- (i) and y-cuts (j) of the field intensity right below the probe apex
Fig. 3SEM images of the prepared probes (a and b) and diagram of the measurement scheme (c)
Fig. 4The left column (a–d) shows the experimental and simulation results of the probe with Rr = 1.50 μm, while the right column (e–h) illustrates that of Rr = 1.90 μm, (a) and (e) Measured and (b) and (f) calculated optical field distribution and (c) and (g) calculated phase distribution and (d) and (h) calculated cross section of the probe tip. The borders of the probe structure are depicted with white dashed lines