Towards an optimal MIIM diode for rectennas at 10.6 μm

We investigate, for the first time, optimization of the responsivity of metal-insulator-insulator-metal (MIIM) diodes by carefully considering materials' properties. The diode's resistance is fixed at 100 Ω in order to match the nano antenna's impedance and to increase the total effic...

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Main Authors: A.Y. Elsharabasy, M.H. Bakr, M.J. Deen
Format: Article
Language:English
Published: Elsevier 2021-09-01
Series:Results in Materials
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2590048X21000376
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spelling doaj-acccb64b30a34912811a59f33d55347a2021-08-28T04:48:27ZengElsevierResults in Materials2590-048X2021-09-0111100204Towards an optimal MIIM diode for rectennas at 10.6 μmA.Y. Elsharabasy0M.H. Bakr1M.J. Deen2Department of Electrical and Computer Engineering McMaster University, Hamilton, ON, L8S 4K1, CanadaDepartment of Electrical and Computer Engineering McMaster University, Hamilton, ON, L8S 4K1, CanadaCorresponding author.; Department of Electrical and Computer Engineering McMaster University, Hamilton, ON, L8S 4K1, CanadaWe investigate, for the first time, optimization of the responsivity of metal-insulator-insulator-metal (MIIM) diodes by carefully considering materials' properties. The diode's resistance is fixed at 100 Ω in order to match the nano antenna's impedance and to increase the total efficiency of the rectifying antenna (rectenna). The optimization is performed at zero-bias responsivity and resistance to ensure zero-bias operation. The diode's resistance and responsivity are calculated from the simulated current-voltage characteristics using Airy functions-based transfer matrix method (TMM) that was verified using experimental results. The design parameters of barrier heights for each insulator and metals, their dielectric constants, and the difference in the metals' work functions, are optimized to enhance the overall diode's performance. Optimal results are presented showing the beneficial effect of simultaneously varying these design parameters. Suggestions for implementing these optimal values with real materials are proposed and presented. Finally, the MIIM capacitance effect on the rectenna cut-off frequency is investigated to ensure that proposed MIIM diodes allow the rectenna to operate efficiently in the IR regime.http://www.sciencedirect.com/science/article/pii/S2590048X21000376Metal-insulator-insulator-metal (MIIM) diodeRectennaQuantum tunnelingResponsivityOptimizationEnergy harvesting
collection DOAJ
language English
format Article
sources DOAJ
author A.Y. Elsharabasy
M.H. Bakr
M.J. Deen
spellingShingle A.Y. Elsharabasy
M.H. Bakr
M.J. Deen
Towards an optimal MIIM diode for rectennas at 10.6 μm
Results in Materials
Metal-insulator-insulator-metal (MIIM) diode
Rectenna
Quantum tunneling
Responsivity
Optimization
Energy harvesting
author_facet A.Y. Elsharabasy
M.H. Bakr
M.J. Deen
author_sort A.Y. Elsharabasy
title Towards an optimal MIIM diode for rectennas at 10.6 μm
title_short Towards an optimal MIIM diode for rectennas at 10.6 μm
title_full Towards an optimal MIIM diode for rectennas at 10.6 μm
title_fullStr Towards an optimal MIIM diode for rectennas at 10.6 μm
title_full_unstemmed Towards an optimal MIIM diode for rectennas at 10.6 μm
title_sort towards an optimal miim diode for rectennas at 10.6 μm
publisher Elsevier
series Results in Materials
issn 2590-048X
publishDate 2021-09-01
description We investigate, for the first time, optimization of the responsivity of metal-insulator-insulator-metal (MIIM) diodes by carefully considering materials' properties. The diode's resistance is fixed at 100 Ω in order to match the nano antenna's impedance and to increase the total efficiency of the rectifying antenna (rectenna). The optimization is performed at zero-bias responsivity and resistance to ensure zero-bias operation. The diode's resistance and responsivity are calculated from the simulated current-voltage characteristics using Airy functions-based transfer matrix method (TMM) that was verified using experimental results. The design parameters of barrier heights for each insulator and metals, their dielectric constants, and the difference in the metals' work functions, are optimized to enhance the overall diode's performance. Optimal results are presented showing the beneficial effect of simultaneously varying these design parameters. Suggestions for implementing these optimal values with real materials are proposed and presented. Finally, the MIIM capacitance effect on the rectenna cut-off frequency is investigated to ensure that proposed MIIM diodes allow the rectenna to operate efficiently in the IR regime.
topic Metal-insulator-insulator-metal (MIIM) diode
Rectenna
Quantum tunneling
Responsivity
Optimization
Energy harvesting
url http://www.sciencedirect.com/science/article/pii/S2590048X21000376
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