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一种电/热双控四功能太赫兹超表面吸波器。

An electrical/thermal dual-controlled quad-functional terahertz metasurface absorber.

机构信息

College of Science, Hohai University, Nanjing, 211100, China.

School of Science, Nanjing University of Posts and Telecommunications, Nanjing, 210003, China.

出版信息

Phys Chem Chem Phys. 2023 Jun 21;25(24):16331-16339. doi: 10.1039/d3cp01275a.

Abstract

Although the design of graphene-based tunable broadband terahertz (THz) absorbers has attracted much attention, improving the functionality of the absorbers to adapt to different scenarios is still worth studying. This paper presents an innovative design of a quad-functional metasurface absorber (QMA) in the THz region, which can switch the absorption frequency/band by means of dual voltage/thermal manipulation. By electrically manipulating the chemical potential of graphene, the QMA can switch freely between the narrowband absorption mode ("NAM") and the broadband absorption mode ("BAM"), while thermally manipulating the phase transition of VO allows switching between the low-frequency absorption mode ("LAM") and the high-frequency absorption mode ("HAM"). Detailed mechanistic analysis shows that the "NAM" and "BAM" are due to the switching of the fundamental and second order graphene surface plasmon polariton (SPP) resonances, respectively, and the switching between "LAM" and "HAM" is due to the phase transformation of VO. Furthermore, the QMA is polarization insensitive in all absorption modes and maintains excellent absorption performance at large angular incidence of TE- and TM-polarized waves. All the results indicate that the proposed QMA has great potential for stealth, sensing, switching, and filtering applications.

摘要

虽然基于石墨烯的可调谐太赫兹(THz)宽带吸收体的设计引起了广泛关注,但提高吸收体的功能以适应不同场景仍然值得研究。本文提出了一种太赫兹区四功能超表面吸收体(QMA)的创新设计,它可以通过双电压/热操纵来切换吸收频率/带宽。通过电操纵石墨烯的化学势,QMA 可以在窄带吸收模式(“NAM”)和宽带吸收模式(“BAM”)之间自由切换,而通过 VO 的相变热操纵可以在低频吸收模式(“LAM”)和高频吸收模式(“HAM”)之间切换。详细的机制分析表明,“NAM”和“BAM”分别是由于基本和二阶石墨烯表面等离子体激元(SPP)共振的切换,而“LAM”和“HAM”之间的切换是由于 VO 的相变。此外,QMA 在所有吸收模式下都是偏振不敏感的,并在 TE 和 TM 偏振波的大入射角下保持优异的吸收性能。所有结果表明,所提出的 QMA 在隐身、传感、切换和滤波应用方面具有巨大的潜力。

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