Detection of surface plasmons based on periodic grating structure

2020 ◽  
Vol 28 (3) ◽  
pp. 526-534
Author(s):  
计吉焘 JI Ji-tao ◽  
翟雨生 ZHAI Yu-sheng ◽  
吴志鹏 WU Zhi-peng ◽  
马祥宇 MA Xiang-yu ◽  
穆慧惠 MU Hui-hui ◽  
...  
2015 ◽  
Vol 2015 ◽  
pp. 1-6 ◽  
Author(s):  
Tsung-Han Tsai ◽  
Ming-Yi Lin ◽  
Wing-Kit Choi ◽  
Hoang Yan Lin

We investigated experimentally the plasmon-enhanced photoluminescence of the amorphous silicon quantum dots (a-Si QDs) light-emitting devices (LEDs) with theAg/SiOx:a-Si QDs/Ag sandwich nanostructures, through the coupling between the a-Si QDs and localized surface plasmons polaritons (LSPPs) mode, by tuning a one-dimensional (1D) Ag grating on the top. The coupling of surface plasmons at the top and bottomAg/SiOx:a-Si QDs interfaces resulted in the localized surface plasmon polaritons (LSPPs) confined underneath the Ag lines, which exhibit the Fabry-Pérot resonance. From the Raman spectrum, it proves the existence of a-Si QDs embedded in Si-richSiOxfilm (SiOx:a-Si QDs) at a low annealing temperature (300°C) to prevent the possible diffusion of Ag atoms from Ag film. The photoluminescence (PL) spectra of a-Si QDs can be precisely tuned by a 1D Ag grating with different pitches and Ag line widths were investigated. An optimized Ag grating structure, with 500 nm pitch and 125 nm Ag line width, was found to achieve up to 4.8-fold PL enhancement at 526 nm and 2.46-fold PL integrated intensity compared to the a-Si QDs LEDs without Ag grating structure, due to the strong a-Si QDs-LSPPs coupling.


2008 ◽  
Vol 93 (26) ◽  
pp. 263106 ◽  
Author(s):  
Yi-Han Ye ◽  
Yu-Wei Jiang ◽  
Ming-Wei Tsai ◽  
Yi-Tsung Chang ◽  
Chia-Yi Chen ◽  
...  

2013 ◽  
Vol 135 (3) ◽  
Author(s):  
Y. Jiao ◽  
L. H. Liu ◽  
P.-F. Hsu

The wavelength-selective radiative property is becoming a noticeable requirement in various technological fields. There are many researches that have been focused on the radiative properties of metal periodic microstructure surface. However, the spectral bandwidth of high absorptance is often too narrow if excited by the conventional grating structures. In order to solve this problem, two novel periodic grating structures are proposed in this paper, which can increase the effective bandwidth of high absorption peaks. One of the new periodic grating structures, called dual-groove grating, is constructed by adding a rectangular groove at the bottom of the simple grating's groove through a secondary microscale processing. The other grating structure, which is called complex dual-groove grating, is constructed by superposing a dual-groove grating with a simple grating within one period. Aluminum grating structure is taken as an example to show the advantage of proposed structures on increasing effective bandwidth of high absorption peaks within mid-infrared and far-infrared spectra. The rigorous coupled-wave analysis (RCWA) is used to calculate the absorptance of periodic grating structures. The results shows that, two close absorption peaks and three connecting absorption peaks are obtained respectively for the two periodic grating structures. The effective bandwidth of high absorption peaks within interested wavelength band is improved obviously by these two microscale grating structures.


Author(s):  
Y. Jiao ◽  
L. H. Liu ◽  
P.-f. Hsu

The wavelength-selective radiative properties are becoming noticeable requirements in various technological fields. There have been many researches focus on the radiative properties of periodic microstructured surface of metals. However, the spectral bandwidth of high absorptance is often too narrow by applying the conventional grating structures. In order to solve this problem, in this paper we propose two novel periodic grating structures, which can widen the spectral bandwidth of high absorptance. One of the new periodic grating structures, called dual-groove grating, is constructed by adding a rectangular groove at the bottom of the simple binary grating’s groove through a secondary microscale processing. The other novel grating structure, which is called complex dual-groove grating, is constructed by superposing a dual-groove grating and a simple binary grating within one period. Aluminum grating structure is taken as an example to show how the geometric parameters based on the novel structure widen the spectral bandwidth of high absorptance within mid-infrared and far-infrared spectra. The rigorous coupled-wave analysis (RCWA) is used to calculate the absorptance of periodic grating structures. The results show that, two close absorption peaks and three connecting absorption peaks are obtained respectively for the two novel periodic grating structures. These two novel structures may widen the effective spectral bandwidth of high absorptance of the microscale periodic grating structures.


1996 ◽  
Vol 03 (03) ◽  
pp. 1387-1392
Author(s):  
R.N. COSTA FILHO ◽  
V.N. FREIRE ◽  
G.A. FARIAS

In this paper we calculate the dispersion relation of surface plasmons propagating on uniaxial crystals, upon which a periodic grating has been built. The Rayleigh–Fano method is used, resulting in an infinite number of branches. We consider different orientations of the optical axis of the crystal, with respect to the direction of propagation. It is observed that the splitting of the surface plasmons depends not only on the ratio between the amplitude of the grating and its period (ζo/a), but also on the factor of anisotropy [Formula: see text], which changes for each optical orientation. Numerical results for the dispersion relation are obtained for α- SiO 2, and show the influence of the factor γ on the convergence of matrices.


Optik ◽  
2017 ◽  
Vol 133 ◽  
pp. 9-16 ◽  
Author(s):  
Ghulam Murtaza ◽  
Aqeel A. Syed ◽  
Qaisar A. Naqvi

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