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超高剖面太阳能电池集成天线,具有高外形系数。

Ultra-low profile solar-cell-integrated antenna with a high form factor.

机构信息

Department of Electrical and Computer Engineering, Ajou University, Suwon, 16499, Republic of Korea.

Department of Physics and Department of Energy Systems Research, Ajou University, Suwon, 16499, Republic of Korea.

出版信息

Sci Rep. 2021 Oct 22;11(1):20918. doi: 10.1038/s41598-021-00461-w.

Abstract

This paper presents an ultra-low-profile copper indium gallium selenide (CIGS) based solar cell integrated antenna with a high form factor. A tiny slot was etched from the solar cell to develop an ultra-low-profile solar-cell-integrated antenna. This tiny slot increases the form factor due to the small clearance area from the solar cell. A ground-radiation antenna design method was applied in which lumped elements were employed inside the tiny slot for antenna operation. Another substrate was used under the solar cell for designing the feeding structure with lumped elements connected to the tiny slot using via holes. A prototype was fabricated and measured to verify the operation of a built-in solar-cell antenna and validate the simulated results. The measured results demonstrate that the solar-cell-integrated antenna covers the entire frequency range of the Industrial Scientific Medical band, from 2.4 to 2.5 GHz, with a maximum gain of 2.79 dBi and radiation efficiency higher than 80% within the impedance bandwidth range. Moreover, the proposed design has an ultra-low-profile structure of only 0.0046 λ, where λ represents the free space wavelength at 2.45 GHz, and a high form factor of 99.1% with no optical blockage. The antenna and solar cell were designed to avoid affecting the performance of each other using the radio-frequency decoupler.

摘要

本文提出了一种具有高外形系数的超低剖面铜铟镓硒(CIGS)基太阳能电池集成天线。通过在太阳能电池上刻蚀一个微小缝隙,开发出一种超低剖面的太阳能电池集成天线。由于与太阳能电池的小间隙面积,这个微小缝隙增加了外形系数。应用了一种基于集总元件的地板辐射天线设计方法,其中集总元件被应用于微小缝隙内部,用于天线操作。另一个基底被用于太阳能电池下方,用于设计带有通过孔连接到微小缝隙的集总元件的馈电结构。制造了一个原型并进行了测量,以验证内置太阳能电池天线的操作,并验证模拟结果。测量结果表明,太阳能电池集成天线覆盖了工业科学医疗频段的整个频率范围,从 2.4 到 2.5 GHz,最大增益为 2.79 dBi,在阻抗带宽范围内辐射效率高于 80%。此外,所提出的设计具有超低剖面结构,仅为 0.0046 λ,其中 λ 表示 2.45 GHz 时自由空间波长,外形系数高达 99.1%,没有光学阻挡。使用射频解耦器设计了天线和太阳能电池,以避免相互影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b36/8536760/7823899a2eba/41598_2021_461_Fig1_HTML.jpg

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