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一种基于狄拉克半金属和钛酸锶的热和电双可调谐吸收器。

A thermally and electrically dual-tunable absorber based on Dirac semimetal and strontium titanate.

作者信息

Xiong Han, Shen Qi

机构信息

School of Microelectronics and Communication Engineering, Chongqing University, Chongqing, 400044, China.

出版信息

Nanoscale. 2020 Jul 16;12(27):14598-14604. doi: 10.1039/d0nr03345f.

DOI:10.1039/d0nr03345f
PMID:32614017
Abstract

In this paper, we proposed a bi-tunable terahertz (THz) metamaterial absorber based on bulk Dirac semimetal (BDS) and strontium titanate (STO). When the values of Fermi energy EF and temperature (T) are equal to 40 meV and 300 K, the simulation result shows that the absorption frequency is centered at 3.69 THz with nearly 100% absorption rates. Interestingly, by adjusting the Fermi energy EF of the BDS pattern from 10 to 80 meV, the peak absorptivity can be continuously tuned from 70% to 99.9%, and the absorption frequency point shifts from 3.265 to 4.82 THz. Meanwhile, when the temperature of the STO metamaterial changes from 200 to 300 K, the absorption frequency point can be dynamically controlled from 2.665 to 3.69 THz with a fixed amplitude. When Fermi energy EF of the BDS and temperature T of STO were varied, the relative impedances of the absorber were investigated. Furthermore, the electric field and power loss density distributions were also examined to further explain the related physical mechanism. Owing to its symmetrical structure, the proposed absorber demonstrates intensity polarization-independent characteristics and can maintain stable absorption with a large range of incident angles. The proposed absorber may be used in various devices such as detectors, selective heat emitters, and smart devices.

摘要

在本文中,我们提出了一种基于体狄拉克半金属(BDS)和钛酸锶(STO)的双可调太赫兹(THz)超材料吸收体。当费米能(E_F)和温度((T))的值分别为40毫电子伏特和300开尔文时,模拟结果表明吸收频率集中在3.69太赫兹,吸收率接近100%。有趣的是,通过将BDS图案的费米能(E_F)从10毫电子伏特调整到80毫电子伏特,峰值吸收率可以从70%连续调谐到99.9%,并且吸收频率点从3.265太赫兹移动到4.82太赫兹。同时,当STO超材料的温度从200开尔文变化到300开尔文时,吸收频率点可以在幅度固定的情况下从2.665太赫兹动态控制到3.69太赫兹。当BDS的费米能(E_F)和STO的温度(T)变化时,研究了吸收体的相对阻抗。此外,还检查了电场和功率损耗密度分布,以进一步解释相关的物理机制。由于其对称结构,所提出的吸收体表现出与强度极化无关的特性,并且在大范围的入射角下都能保持稳定的吸收。所提出的吸收体可用于各种器件,如探测器、选择性热发射器和智能器件。

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