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用于自给自足的未来建筑窗户涂层的薄膜太阳能吸收器结构

Thin-Film Solar Energy Absorber Structure for Window Coatings for Self-Sufficient Futuristic Buildings.

作者信息

Alsaif Haitham, Muheki Jonas, Ben Ali Naim, Ghachem Kaouther, Surve Jaymit, Patel Shobhit K

机构信息

Department of Electrical Engineering, College of Engineering, University of Ha'il, Ha'il City 81451, Saudi Arabia.

Department of Physics, Marwadi University, Rajkot 360003, Gujarat, India.

出版信息

Micromachines (Basel). 2023 Aug 17;14(8):1628. doi: 10.3390/mi14081628.

Abstract

Energy-efficient buildings are a new demand in the current era. In this paper, we present a novel metamaterial design aimed at achieving efficient solar energy absorption through a periodic MMA structure composed of a W-GaAs-W. The proposed structure can be implemented as the window coating and in turn it can absorb the incident solar energy and, then, this energy can be used to fulfill the energy demand of the building. Our results reveal significant improvements, achieving an average absorptance of 96.94% in the spectral range. Furthermore, we explore the influence of the angle of incidence on the absorber's response, demonstrating its angle-insensitive behavior with high absorption levels (above 90%) for incidence angles up to 60° for TE polarization and 40° for TM polarization. The proposed structure presents a significant advancement in metamaterial-based solar energy absorption. By exploring the effects of structural parameters and incident angles, we have demonstrated the optimized version of our proposed absorber. The potential applications of this metamaterial absorber in self-sufficient futuristic building technologies and self-sustaining systems offer new opportunities for harnessing solar energy and are a valuable contribution to future developments in the fields of metamaterials and renewable energy.

摘要

节能建筑是当前时代的新需求。在本文中,我们提出了一种新颖的超材料设计,旨在通过由W - GaAs - W组成的周期性MMA结构实现高效太阳能吸收。所提出的结构可作为窗户涂层来实现,进而能够吸收入射的太阳能,然后,这些能量可用于满足建筑物的能源需求。我们的结果显示出显著的改进,在光谱范围内实现了96.94%的平均吸收率。此外,我们探究了入射角对吸收体响应的影响,证明了其在TE偏振入射角高达60°以及TM偏振入射角高达40°时具有高吸收水平(高于90%)的角度不敏感特性。所提出的结构在基于超材料的太阳能吸收方面取得了重大进展。通过探究结构参数和入射角的影响,我们展示了所提出吸收体的优化版本。这种超材料吸收体在自给自足的未来建筑技术和自我维持系统中的潜在应用为利用太阳能提供了新机会,并且是对超材料和可再生能源领域未来发展的宝贵贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d68/10458048/dc8361b728bb/micromachines-14-01628-g001.jpg

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