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首页> 外文期刊>Photonics and Nanostructures: Fundamentals and Applications >High-modulation system based on graphene-structured Schottky junction for terahertz signal transmission
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High-modulation system based on graphene-structured Schottky junction for terahertz signal transmission

机译:基于石墨烯结构肖特基交界处的高调制系统,用于太赫兹信号传输

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摘要

In recent years many technological applications based on graphene-structured systems have attracted great interest of the solid state community due to the non-peculiar optical properties of graphene related to the strong movility of the charge carriers of this material. One of these applications is the electro-optical modulator, which becomes a key device for optical communication. In this connection, in this paper we theoretically propose an electro-optical system based on a graphene-structured Schottky junction and gated by a low voltage, which induces a considerably transmission modulation of the terahertz signal. One of the most important results of the presented system, that is supported on the strong interaction between Dirac electrons and circularly polarized photons of the field radiation, lies especially in that no extra pumping optical field is needed to obtain a modulation depth around 97% for a low gate voltage of 0.42 V. For positive voltages, the signal amplitude strongly increases till the built-in potential value is reached. For voltage values over the built-in potential a reversing tendency of the modulation depth is observed, whereas for negative values of the voltage the modulation decreases, presenting the system a classical Schottky diode behavior. We also report an oscillatory behavior of the signal amplitude that, in addition to the known Drude behavior, complements the description of the terahertz transmission spectra. In this context, we develop a quantum formulation, which is able to describe clearly these nonlinear effects on the basis of the coherent and incoherent momentum relaxation of photon dressed electrons at impurities in such graphene-structured systems.
机译:近年来,由于与该材料的电荷载体的强型无动力有关的石墨烯的非特殊光学性质,许多基于石墨烯结构的技术的技术应用引起了较大的态度群体。其中一个应用是电光调制器,其成为用于光通信的关键装置。在这方面,在本文中,我们理论上我们基于石墨烯结构的肖特基结来提出一种电光系统,并通过低电压门控,其引起太赫兹信号的显着传输调制。所呈现的系统的最重要结果之一,支持狄拉克电子与场辐射的圆极化光子之间的强相互作用,特别是在不需要额外的泵送光场,以获得约97%的调制深度对于正电压,低栅极电压为0.42 V,信号幅度强烈增加,直到达到内置电位值。对于内置电位上的电压值观察到调制深度的反转趋势,而对于调制降低的电压的负值,呈现了经典肖特基二极管行为。我们还报告了信号幅度的振荡行为,除了已知的博德行为之外,还互补了太赫兹传输光谱的描述。在这种情况下,我们开发了一种量子制剂,其能够基于在这种石墨烯结构化系统中的杂质中的光子穿着电子的相干和不连贯的动力松弛来描述这些非线性效应。

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