Design and Analysis of Hexagonal Dipole Nano-Rectenna Based on MIIM Diode for Solar Energy Harvesting

F. M. Abdel Hamied, K. Mahmoud, M. Hussein, S. Obayya
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引用次数: 2

Abstract

In this work, new design of hexagonal dipole nano-rectenna for solar energy harvesting is presented. The proposed design is composed of silver hexagonal nano-dipole antenna integrated with metal insulator metal (MIM) tunnel diode with single and double insulators. The proposed hexagonal nano-dipole antenna consists of two identical elements separated apart by air gap. The MIM tunnel diode is realized by overlapping the nano-antenna (NA) arms and sandwiching metal oxide layer in between to benefit from the high localized fields at the NA gap. The reported design performance in terms of the total radiation efficiency, directivity and total harvesting efficiency is studied. The numerical study of NA is carried out in the wavelength range 300–3000 nm, using the finite integral technique (FIT) method. The reported design has an average total radiation efficiency of 92.28% in the wavelength of range (300–3000) nm. The proposed NA with single insulator MIM diode, and double insulator, MIIM diode, give roughly the same results of maximum radiation efficiency of 98%, maximum directivity of 14 at the wavelength of 500 nm and total harvesting efficiency of 95.35%. These results are attributed to the sharp tips of hexagonal arms. Furthermore, MIIM diode offers zero bias voltage responsivity of 17.29 A/W and maximum responsivity of −170.9 A/W. This enhancement is due to the use of multi-insulators between the two metals.
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基于MIIM二极管的太阳能收集用六方偶极子纳米整流天线设计与分析
本文提出了一种用于太阳能收集的六方偶极子纳米整流天线的新设计。本文提出的设计是由银六方纳米偶极子天线与金属绝缘子金属(MIM)隧道二极管集成,具有单绝缘子和双绝缘子。提出的六边形纳米偶极天线由两个相同的元素组成,由气隙分开。MIM隧道二极管是通过纳米天线臂的重叠和金属氧化物层的夹心来实现的,以利用纳米天线间隙的高局域场。从总辐射效率、指向性和总收获效率三个方面研究了所报道的设计性能。采用有限积分法(FIT)在300 ~ 3000 nm波长范围内对NA进行了数值研究。该设计在300 ~ 3000 nm波长范围内的平均总辐射效率为92.28%。所提出的单绝缘子MIM二极管和双绝缘子MIM二极管的NA在500 nm处的最大辐射效率为98%,最大指向性为14,总收获效率为95.35%,结果大致相同。这些结果归因于六角形臂的尖锐尖端。此外,MIIM二极管的零偏置电压响应率为17.29 A/W,最大响应率为- 170.9 A/W。这种增强是由于在两种金属之间使用了多重绝缘体。
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