scholarly journals Quantifying Fraction of Total Power Vs Wavelength of Ultra-Nanoscale Plasmonic Biosensor Device using Metal-Insulator-Metal-Metal Stack, Nano wells and Biotin Layer.

An ultra-thin three-dimensional nanostructured biosensor device based on the Plasmonic principle is custom designed and analyzed for the Plasmonic properties. Here the FDTD (Finite Difference Time Domain) method is adopted as mathematical model using MEEP (MIT Electromagnetic Equation Propagation) open-source simulation tool. The four models are investigated and analyzed in the following order for respective Plasmonic properties of fraction of total power with respect to the wavelength for model-I MIMM layers (Metal-Insulator-Metal-Metal) with no nanostructure (AlAl2O3-Cr-Au), model-II MIMM layers with no nanostructure (Al- Al2O3-Cr-Au) and Biotin layer, model-III MIMM layers (AlAl2O3-Cr-Au) with 11 x 11 Nano well structures and model-IV MIMM layers with Nano well structures and Biotin layer (AlAl2O3-Cr-Au-Biotin). Here the structural and functional behavior of model I Vs Model II Vs Model III vs Model IV is simulated and the fraction of power is measured across the biosensor stack layer of MIMM for the wave length range quantified. In model II there is an approximate 5% power loss at all layers when compared to model I due to addition of the Biotin layer. In model IV there is an approximate 50 % power loss when compared to model III at Au layer, 60% power loss when compared to model III at Al layer and 67% of power loss at Cr + Al2O3 due to Biotin layer. These quantifications can be used to understand the model and the behavior of the biosensor under various conditions well before the fabrication, thereby reducing the cost and to comprehend the behavior of each material in terms of power dissipation so different material can be experimented.

2012 ◽  
Vol 6 (12) ◽  
pp. 838-844 ◽  
Author(s):  
Hyuck Choo ◽  
Myung-Ki Kim ◽  
Matteo Staffaroni ◽  
Tae Joon Seok ◽  
Jeffrey Bokor ◽  
...  

2007 ◽  
Vol 54 (4) ◽  
pp. 742-751 ◽  
Author(s):  
Aurlie Bajolet ◽  
Raphal Clerc ◽  
G. Pananakakis ◽  
Dimitrios Tsamados ◽  
Eric Picollet ◽  
...  

2010 ◽  
Vol 108 (12) ◽  
pp. 124104 ◽  
Author(s):  
Dayu Zhou ◽  
U. Schroeder ◽  
Jin Xu ◽  
J. Heitmann ◽  
G. Jegert ◽  
...  

2021 ◽  
Vol 2111 (1) ◽  
pp. 012038
Author(s):  
Muhamad Ali ◽  
Zaenal Arifin

Abstract PT Barata is one of Indonesia’s leading turbine component manufacturers, requiring a large amount of electricity for production. Along with the increase in production and factory expansion, the need for electricity continues to increase so that it continues to add power to reach 3780 KVA. One of the weaknesses of the electric power system at PT Barata is using six (6) 20kV/400 V, 630 kVA transformer units. This system produces a no-load or core loss of 8150 Watts. In one year, the power loss reached 71.394 kWh at the cost of IDR 118,514,040.00. Power loss is permanent and lasts all the time during the use of the Transformer. This article aims to redesign the electrical system at PT Barata using a single 4000 kVA transformer. The redesign of the electric power system at PT Barata was carried out by 1. Observing and measuring the electric power system at PT Barata, 2. calculating the resulting losses, 3. conducting studies and designs, 4 comparing the ratio of the total power loss of the electric power system currently with a new design, 5. Propose a redesign to management for implementation. Calculation and analysis of the new design with a 4000 kVA transformer obtained a core loss of 4450 Watt at the cost of Rp. 64,905.030.00, resulting in a savings of IDR. 53,965,980.00 per year. The new design will save 45% in operating costs compared to the previous six transformer units.


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