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通过钛酸锶和石墨烯对太赫兹吸收频率、带宽和幅度进行动态调制

Dynamic Modulation of THz Absorption Frequency, Bandwidth, and Amplitude via Strontium Titanate and Graphene.

作者信息

Wu Tong, Wang Guan, Jia Yang, Shao Yabin, Gao Yang, Gao Yachen

机构信息

Department of Optoelectronic Information, Electronic Engineering College, Heilongjiang University, Harbin 150080, China.

School of Jia Yang, Zhejiang Shuren University, Shaoxing 312028, China.

出版信息

Nanomaterials (Basel). 2022 Apr 14;12(8):1353. doi: 10.3390/nano12081353.

Abstract

A multi-functional broadband absorber based on graphene and strontium titanate (STO) film was designed. Additionally, the frequency, bandwidth, and amplitude of the absorber could be tuned by adjusting temperature and Fermi level of the graphene. By using the finite-difference time-domain (FDTD) method, the numerical calculation result shows that, when keeping the device temperature at 230 K and setting graphene Fermi level to be 1 eV, three absorption peaks at 1.72 THz, 2.08 THz, and 2.59 THz were realized and combined into a broadband absorption from 1.68 to 2.74 THz. As the STO temperature was increased from 230 K to 310 K, the center frequency moved from 2.2 THz to 2.45 THz; correspondingly, the broadband absorption range was widened from 1.06 THz to 1.24 THz. When the temperature was fixed at 230 K and the graphene Fermi level was tuned from 1 eV to 0.7 eV, the absorption bandwidth decreased from 1.06 THz to 0.64 THz. While the Fermi level was tuned continually to be 0.01 eV, only a single absorption peak with an absorption rate of 0.29 existed. The broadband absorption and tuning mechanism of the absorber were analyzed using impedance matching theory. Furthermore, we also studied the effect of incident angle and polarization direction on the properties of the absorber. The multi-functional tunable absorber provides potential applications for the design of more efficient terahertz functional devices in the future.

摘要

设计了一种基于石墨烯和钛酸锶(STO)薄膜的多功能宽带吸收器。此外,通过调节石墨烯的温度和费米能级,可以调节吸收器的频率、带宽和幅度。利用时域有限差分(FDTD)方法进行数值计算,结果表明,当器件温度保持在230 K且石墨烯费米能级设置为1 eV时,在1.72 THz、2.08 THz和2.59 THz处实现了三个吸收峰,并合并为1.68至2.74 THz的宽带吸收。随着STO温度从230 K升高到310 K,中心频率从2.2 THz移动到2.45 THz;相应地,宽带吸收范围从1.06 THz拓宽到1.24 THz。当温度固定在230 K且石墨烯费米能级从1 eV调至0.7 eV时,吸收带宽从1.06 THz减小到0.64 THz。当费米能级继续调至0.01 eV时,仅存在一个吸收率为0.29的单吸收峰。利用阻抗匹配理论分析了吸收器的宽带吸收和调谐机制。此外,还研究了入射角和偏振方向对吸收器性能的影响。这种多功能可调吸收器为未来设计更高效的太赫兹功能器件提供了潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e39/9025815/9a5073cd9c83/nanomaterials-12-01353-g001.jpg

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