基于狄拉克半金属的动态可调谐四窄带太赫兹吸收体,具有完美的吸收和高灵敏度

IF 2.2 3区 物理与天体物理 Q2 OPTICS
Weijun Zhou , Youqi Zhang , Xuefeng Qin , Yang Huang , Zhiming Huang , Nianxi Xu , Ben-Xin Wang
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引用次数: 0

摘要

多波段太赫兹超材料吸收剂在现代科学研究和实际应用中是必不可少的,在生物医学传感、高精度光谱等领域有着广泛的应用。本研究提出一种利用狄拉克半金属(BDS)的四波段可调谐窄带太赫兹吸收体,具有动态调谐能力和高吸收效率。结果表明,在0.1 ~ 2.4太赫兹范围内,该吸收器在4个波段均达到96%以上的完美吸收,其中2个峰的吸收率超过99%。所设计的吸收体具有良好的动态可调性,可以通过调制北斗系统的费米能级来调节四种模式的吸收频率和吸收速率。利用阻抗匹配理论和近场分布理论研究吸收机理,利用耦合和摄动理论分析顶层结构对共振频率的影响。此外,对于分析物的折射率检测,结果表明窄带吸收器具有优异的性能,灵敏度高达145 GHz/RIU,质量因子(Q)为77。这些特性使吸收器适用于更广泛的应用,包括隐身技术、医疗诊断和太赫兹通信。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A dynamically tunable four-narrowband terahertz absorber based on Dirac semimetal for perfect absorption and high sensitivity
Multi-band terahertz metamaterial absorbers are essential in modern scientific research and practical applications, with broad usage in areas such as biomedical sensing, high-precision spectroscopy. This study presents a four-band tunable narrowband terahertz absorber utilizing Dirac semimetal (BDS), offering dynamic tuning capabilities and high absorption efficiency. It is demonstrated that the absorber achieves over 96 % perfect absorption across four bands in the range of 0.1–2.4 THz, with two peaks exceeding 99 % absorption. The designed absorber exhibits excellent dynamic tunability, enabling adjustment of the absorption frequencies and rates of the four modes by modulating the Fermi energy level of BDS. The absorption mechanism is studied through impedance matching theory and near-field distribution, while coupling and perturbation theories are used to analyze how the top layer's structure affects the resonance frequency. Additionally, for refractive index detection of analytes, the results show that the narrowband absorber exhibits excellent capabilities with a sensitivity of up to 145 GHz/RIU and a quality factor (Q) of 77. These features enable the absorber suitable for broader applications, including stealth technology, medical diagnostics, and terahertz communications.
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来源期刊
Optics Communications
Optics Communications 物理-光学
CiteScore
5.10
自引率
8.30%
发文量
681
审稿时长
38 days
期刊介绍: Optics Communications invites original and timely contributions containing new results in various fields of optics and photonics. The journal considers theoretical and experimental research in areas ranging from the fundamental properties of light to technological applications. Topics covered include classical and quantum optics, optical physics and light-matter interactions, lasers, imaging, guided-wave optics and optical information processing. Manuscripts should offer clear evidence of novelty and significance. Papers concentrating on mathematical and computational issues, with limited connection to optics, are not suitable for publication in the Journal. Similarly, small technical advances, or papers concerned only with engineering applications or issues of materials science fall outside the journal scope.
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