| Literature DB >> 32610447 |
Daler R Dadadzhanov1,2, Tigran A Vartanyan1, Alina Karabchevsky2.
Abstract
Molecular overtones stretching modes that occupy the near-infrared (Entities:
Keywords: localized surface plasmon resonance; metasurface; overtone spectroscopy; surface-enhanced near-infrared absorption
Year: 2020 PMID: 32610447 PMCID: PMC7408061 DOI: 10.3390/nano10071265
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Dispersion characteristic of the N-Methylaniline (NMA) molecules as a function of the wavelength in the near-infrared.
Figure 2(a) 3D schematics of the gold metasurface modeled in COMSOL Multiphysics software. The width and height of gold nanoparallelepipeds (NPs) in the array are of = 20 nm, while the length is varied. The longitudinal and transverse lattice constants are defined as and . t designates the analyte film thickness. The incident light propagation direction k and polarization E are also shown. (b) Schematics of 2D cross-section of the model. Furthermore, the gold metasurface submerged into the analyte layer, the structure involves a BK7 glass substrate and an air layer with refractive index n = 1. The sample is placed between perfectly matched layers (PML).
Figure 3Calculated transmission spectra of gold metasurfaces with NPs of lengths L varied from 100 (crimson curve) to 220 (purple curve) nm in 10 nm steps, whereas lattice periods were fixed at = 400 nm and = 200 nm. The extinction coefficient of NMA is shown below the transmission curves. The gold metasurface was embedded in NMA with a thickness of 100 nm.
Figure A1The LSPR spectral position as a function of NPs length L. The metasurface parameters were set to the following values: = 20 nm, t = 100 nm, = 400 nm, and = 200 nm.
Figure 4The electric field enhancement distribution around the gold NP in an array ( = 400 nm and = 200 nm) surrounded by NMA layer: top view (a) and side view (b). Normalized electric field distribution along the x-axis goes through the NP center (c); the same for the z-axis (d) at x = 87.5 nm. Color encoding in (c,d): blue—the BK-7 glass substrate, yellow—gold nanoparticle, red—thin layer of NMA layer, white—air. The excitation wavelength is = 1494 nm. The colorbar corresponds for colormaps in (a,b) subplots.
Figure 5Differential transmission (DT) of metasurfaces with 100 nm thick analyte overlayers. The length of NPs varies from 100 (crimson curve) to 220 (purple curve) nm with steps of 10 nm while the lattice periods are of = 400 nm and = 200 nm. The DT contrast is defined as the difference between the maximum and minimum values of DT in the spectral range of the N-H overtone transition and is shown by an arrow for one of the metasurfaces.
Figure A2A closer look at the transmission spectra of metasurfaces covered by the NMA layer (black curves) and immersion oil with (red curves) of the same thickness nm. The NPs lengths L were chosen to provide for the coincidence of the collective LSPRs of the metasurfaces with the NMA overtone transitions: (a) nm for N-H band and (b) nm for C-H band.
Figure 6(a) DT of NMA films on a bare substrate as function of the film thickness. The insert shows the structure of the parallel films used for the calculation under the normal incidence illumination. (b) The DT contrast estimated from the data presented in Figure 5 as a function of the nanoantenna length.
Figure 7Variation of the local field enhancement (blue curve) and the resonant nanoantenna length L (red curve) with the lattice period when the other lattice period is fixed at = 200 nm and ensuring constant collective Localized surface plasmon resonance (LSPR) band at = 1494 nm. The analyte film thickness t = 35 nm.
Figure 8Variation of the local field enhancement (blue curve) and the DT enhancement factor (EF) with the lattice period when the other lattice period is fixed at = 970 nm. The inset shows EF against the lattice constant at fixed = 75 nm. Additionally, the direction and color of the horizontal arrow indicate the corresponding axis for the red and blue curves.
Figure A3Dependence of the resonance antenna length L on the longitudinal lattice period at the fixed = 970 nm.