High-performance absorber with substitutable materials for short-wave infrared sensing

Fengjie Li, Shang Wang, Zongtao Chi, Tiqiang Zhang, Ruitao Yu, Bin Wang, Ning Li
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Abstract

The optical absorption device plays a crucial role as a component of the infrared astronomical telescope and possesses a significant impact on astronomical observations. A simple metamaterial absorber with substitutable middle materials is made for short-wave infrared sensing. The absorber is designed as a hollow square column, using a patterning approach for the top-layer structure of metamaterials. The absorption characteristics are verified using the impedance matching method, which involves extracting S-parameters and then performing inverse calculations to determine the absorber’s equivalent impedance. The result shows the highest absorption peak is at 3.25 μm, reaching 99.71%, with an impressive average absorption rate of 99.01% between 1.52 and 3.66 μm. The results demonstrate that this absorber shows polarization insensitivity while maintaining high absorption even at large angles of incidence. The distribution of the electromagnetic field within the absorber, the electromagnetic losses within individual layers, and their impact on the absorptive performance are analyzed in detail. Polarization angles, transverse magnetic polarization, and transverse electric polarization are further explored. The parameters of each layer have been discussed. An investigation of the intermediate dielectric layer has been conducted. The proposed absorber shows the potential to achieve exceptional absorption performance under various dielectric conditions, rendering it a promising candidate for use in astronomical observation, medical tests, infrared detection, invisible short-wave infrared systems, radar and various optical devices.
用于短波红外传感的可替代材料高性能吸收器
光学吸收装置作为红外天文望远镜的重要组成部分,对天文观测具有重要影响。本研究利用可替代的中间材料制作了一种用于短波红外传感的简易超材料吸收器。该吸收器设计为空心方柱,采用了超材料顶层结构的图案化方法。利用阻抗匹配法对吸收特性进行了验证,该方法包括提取 S 参数,然后进行反演计算以确定吸收器的等效阻抗。结果表明,最高吸收峰值位于 3.25 μm,吸收率达到 99.71%,1.52 至 3.66 μm 之间的平均吸收率为 99.01%,令人印象深刻。结果表明,这种吸收器对偏振不敏感,即使在大入射角下也能保持高吸收率。研究详细分析了吸收器内部的电磁场分布、各层内部的电磁损耗及其对吸收性能的影响。还进一步探讨了极化角、横向磁极化和横向电极化。还讨论了各层的参数。还对中间介电层进行了研究。所提出的吸收器显示出在各种介电条件下实现优异吸收性能的潜力,使其有望用于天文观测、医疗测试、红外探测、不可见短波红外系统、雷达和各种光学设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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