| Literature DB >> 28673049 |
Hanning Yang1,2,3, Edgar Oduor Owiti1,2,3, Xiangqian Jiang1,2,3, Siren Li1,2,3, Peng Liu1,2,3, Xiudong Sun4,5,6,7.
Abstract
Misaligned edge-to-edge dimers are the common products during the preparation of Ag nanoprism dimers using self-assembly method. However, in the self-assembly method, Ag nanoprisms are easily truncated because they are easy to oxidize in an acidic environment. In this work, modeling a truncated Ag nanoprism on a misaligned edge-to-edge dimer provides a better understanding of the effects of the truncation and misalignment on localized surface plasmon resonance (LSPR) of the dimer. The resonant wavelength and intensity of the dimer are flexibly modulated by changing the misalignment length of the dimer. As the misalignment length increases, a stronger peak at the shorter wavelength and a weaker one at the longer wavelength are observed. The resonant wavelengths and intensities of the two peaks are also flexibly tuned by adjusting the truncated length of the Ag nanoprism in the dimer. The results are numerically demonstrated based on the finite element method (FEM) and show promising potential for nanoswitch, multi-channel tunable biosensor and other nanodevice applications.Entities:
Keywords: Ag Nanoprism dimer; LSPR; Misalignment; Truncation
Year: 2017 PMID: 28673049 PMCID: PMC5493601 DOI: 10.1186/s11671-017-2062-4
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic diagram of the Ag TNP dimer showing a specific misalignment length l 1
Fig. 2ECS spectra of Ag TNP dimers. a ECS intensity distribution map as functions of R and wavelength. b ECS resonant wavelength (the dark scatter line) and intensity (the red short dotted line) spectra versus R. The square and triangle lines show peak 1 and peak 2, respectively
Fig. 3Calculated electric field distributions of Ag TNP dimers and monomer. Images are taken as the cross-section of the Ag TNP dimer at z = 0 on the x-y plane. Panels a–g correspond to the points A–G marked in Fig. 2a. Peak 1: a R = 0; b R = 0.5, B; c R = 1; d R = 1.5. Peak 2: e R =0, f R = 0.5, g R = 1. h Monomer
Fig. 4ECS spectra of Ag TNP dimers with l 2 changing from 0 to 43.3 nm. a R = 0; b R = 1. The dark scatter and red short dot lines show the resonant wavelength and intensity spectra, respectively. The square and triangle lines show peak 1 and peak 2, respectively
Fig. 5ECS spectra of the Ag HNP dimer. a ECS intensity distribution map versus R 1 and wavelength. b Resonant wavelength spectra of the two peaks