| Literature DB >> 26958546 |
Jing Yang1, Fanghui Ren1, Xinyuan Chong1, Donglei Fan2, Swapnajit Chakravarty3, Zheng Wang4, Ray T Chen4, Alan X Wang1.
Abstract
We designed and fabricated guided-mode resonance (GMR) gratings on indium-tin-oxide (ITO) thin film to generate a significantly enhanced local electric field for surface-enhanced Raman scattering (SERS) spectroscopy. Ag nanoparticles (NPs) were self-assembled onto the surface of the grating, which can provide a large amount of "hot-spots" for SERS sensing. The ITO gratings also exhibit excellent tolerance to fabrication deviations due to the large refractive index contrast of the ITO grating. Quantitative experimental results of 5,5'-dithiobis(2-nitrobenzoic acid) (DTNB) demonstrate the best enhancement factor of ~14× on ITO gratings when compared with Ag NPs on a flat ITO film, and the limit of detection (LOD) of DTNB is as low as 10 pM.Entities:
Keywords: grating; guided-mode resonance; self-assembling; silver nanoparticles; surface-enhanced Raman scattering
Year: 2014 PMID: 26958546 PMCID: PMC4779645 DOI: 10.3390/photonics1040380
Source DB: PubMed Journal: Photonics
Figure 1(a) SEM image of the fabricated ITO grating structure after focused ion beam (FIB) patterning; (b) optical image of the Ag NP self-assembled grating; and (c) SEM image of the Ag NPs.
Figure 2Schematic of the proposed guided-mode resonance (GMR) grating (a); the simulated optical transmission spectra of the ITO grating with different incident angles (b); and the electric field Ex distribution in the X–Z plane with a normal incident angle (c) and a 5° incident angle (d). SOG, spin-on glass.
Figure 3(a) Experimental setup of the transmission measurement; and (b) the experimentally measured transmission spectrum of the ITO grating coated with SOG. SM, single mode.
Figure 4(a) 3D COMSOL model; (b) peak electric filed enhancement of three different surface-enhanced Raman scattering (SERS) substrates; (c) electric field distribution (side view) of the ITO grating with a Ag dimer on top of the SOG layer at 532-nm excitation.
Figure 5Electric field distribution (top view) of (a) a Ag dimer, (b) a Ag trimer and (c) a cluster with ten highly-packed Ag NPs on top of the SOG surface above the ITO grating at 532-nm excitation.
Figure 6SERS spectra of 5,5’-dithiobis(2-nitrobenzoic acid) (DTNB) with concentrations ranging from 100 nM to 10 pM on (a) ITO gratings and on (b) bare Ag NPs; (c) a comparison of the Raman peaks at 1331 cm−1.
Figure 7SERS performance of 1 μM DTNB on different gratings (a) and Raman intensities of the band at 1331 cm−1 of DTNB from different gratings (b).