不同间隙宽度的太赫兹超材料的有效传感体积

Q Physics and Astronomy Journal of the Optical Society of Korea Pub Date : 2016-10-25 DOI:10.3807/JOSK.2016.20.5.628
SaeJune Park, S. Yoon, Y. Ahn
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引用次数: 7

摘要

本文从实验和理论两方面研究了超材料间隙区约束电场的垂直范围,并利用太赫兹时域谱分析了不同间隙宽度下的约束电场垂直范围。我们测量了共振频率在0 ~ 3.2 μm范围内与聚甲基丙烯酸甲酯厚度的函数关系,以量化有效检测体积。我们发现超材料的有效垂直范围是由间隙宽度的大小决定的。垂直范围随着超材料间隙宽度的减小而减小,而由于高度集中的电场,灵敏度随着间隙宽度的减小而增强。实验结果与时域有限差分仿真结果吻合较好。最后,得到了垂直范围随间隙宽度的函数表达式。该表达式可用于优化传感效率。
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Effective Sensing Volume of Terahertz Metamaterial with Various Gap Widths
We studied experimentally and theoretically the vertical range of the confined electric field in the gap area of metamaterials, which was analyzed for various gap widths using terahertz time-domain spectroscopy. We measured the resonant frequency as a function of the thickness of poly(methyl methacrylate) in the range 0 to 3.2 μm to quantify the effective detection volumes. We found that the effective vertical range of the metamaterial is determined by the size of the gap width. The vertical range was found to decrease as the gap width of the metamaterial decreases, whereas the sensitivity is enhanced as the gap width decreases due to the highly concentrated electric field. Our experimental findings are in good agreement with the finite-difference time-domain simulation results. Finally, a numerical expression was obtained for the vertical range as a function of the gap width. This expression is expected to be very useful for optimizing the sensing efficiency.
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CiteScore
0.70
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审稿时长
2.3 months
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