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Kinetic inductance driven nanoscale 2D and 3D THz transmission lines

机译:动力学电感驱动的纳米级2D和3D THz传输线

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We examine the unusual dispersion and attenuation of transverse electromagnetic waves in the few-THz regime on nanoscale graphene and copper transmission lines. Conventionally, such propagation has been considered to be highly dispersive, due to the RC time constant-driven voltage diffusion below 1?THz and plasmonic effects at higher optical frequencies. Our numerical modeling across the microwave, THz, and optical frequency ranges reveals that the conductor kinetic inductance creates an ultra-broadband linear-dispersion and constant-attenuation region in the THz regime. This so-called LC region is an ideal characteristic that is known to be absent in macro-scale transmission lines. The kinetic-LC frequency range is dictated by the structural dimensionality and the free-carrier scattering rate of the conductor material. Moreover, up to 40x wavelength reduction is observed in graphene transmission lines.
机译:我们研究了纳米级石墨烯和铜传输线上在数兆赫兹范围内横向电磁波的异常分散和衰减。按照惯例,由于RC时间常数驱动的电压扩散低于1?THz,并且在较高的光频率下具有等离子体效应,因此这种传播被认为是高度分散的。我们在微波,太赫兹和光学频率范围上的数值模型表明,导体动电感在太赫兹范围内产生了超宽带线性色散和恒定衰减区域。所谓的LC区域是理想的特性,已知在大型传输线中是不存在的。 LC动力学范围由导体材料的结构尺寸和自由载流子散射速率决定。此外,在石墨烯传输线中观察到多达40倍的波长减少。

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