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使用3D打印超表面的混合微波/太阳能收集系统

Hybrid Microwave/Solar Energy Harvesting System Using 3D-Printed Metasurfaces.

作者信息

Drymiskianaki Argyri, Viskadourakis Zacharias, Kenanakis George

机构信息

Department of Materials Science and Technology, University of Crete, GR-70013 Crete, Greece.

Institute of Electronic Structure and Laser (IESL), Foundation for Research and Technology-Hellas (FORTH), GR-70013 Crete, Greece.

出版信息

Materials (Basel). 2024 Dec 5;17(23):5969. doi: 10.3390/ma17235969.

Abstract

In this study, a hybrid energy harvesting system based on a conventional solar cell combined with 3D-printed metasurface units is studied. Millimeter-scale metasurface units were fabricated via the stereolithography technique, and then they were covered with conductive silver paint, in order to achieve high electric conductivity. The performance of single, as well as two-unit metasurface harvesters, was thoroughly investigated. It was found that both of them produced voltage, which peaks at their resonance frequency, demonstrating efficient energy harvesting behavior in the microwave regime. Then, the metasurface units were connected with a commercially available photovoltaic panel and the performance of the hybrid system was examined under different environmental conditions, modifying the light intensity (i.e., light, dark and shadow). It was shown that the proposed hybrid harvesting system produces a sizable voltage output, which persists, even in the case when one of the components does not contribute. Furthermore, the performance of the hybrid harvester is found to be adequate enough, although optimization of the harvesting circuit is required in order to achieve high efficiency levels. All in all, the presented experimental evidence clearly indicates the realization of a rather promising hybrid energy harvesting system, exploiting two distinct ambient energy sources, namely light and microwaves.

摘要

在本研究中,对一种基于传统太阳能电池与3D打印超表面单元相结合的混合能量收集系统进行了研究。通过立体光刻技术制造了毫米级的超表面单元,然后用导电银漆覆盖,以实现高电导率。对单个以及双单元超表面收集器的性能进行了深入研究。发现它们都能产生电压,在其共振频率处达到峰值,证明在微波频段具有高效的能量收集行为。然后,将超表面单元与市售光伏面板连接,并在不同环境条件下(改变光强,即光照、黑暗和阴影)检查混合系统的性能。结果表明,所提出的混合收集系统能产生可观的电压输出,即使在其中一个组件不工作的情况下该输出依然存在。此外,尽管为了实现高效率水平需要对收集电路进行优化,但发现混合收集器的性能足够良好。总而言之,所呈现的实验证据清楚地表明实现了一种颇具前景的混合能量收集系统,该系统利用了两种不同的环境能源,即光和微波。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84e9/11643723/b3b5af2b5017/materials-17-05969-g001.jpg

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