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One dimensional graphene based photonic crystals: Graphene stacks with sequentially-modulated doping for photonic band gap tailoring

机译:一维基于石墨烯的光子晶体:具有顺序调制掺杂的石墨烯叠层,用于光子带隙定制

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In a periodic arrangement of equally-doped graphene monolayers the electromagnetic wave propagation is described by band theory. We have found that the photonic response of this system enriches when the doping level is sequentially-modulated acquiring periodic, quasi-periodic or harmonic profiles along the superlattice axis. Because the dielectric background that supports the graphene layers is homogeneous, it is the doping modulation superimposed on the graphene layers that produces a particular photonic band structure. We report that the fixed separation between the layers generates a persistent structural band gap which is tunable by gating. We also demonstrate that doping modulations following continuous cosine or semi-continuous square envelope functions give place to frequency mini-bands. In our calculations the doping levels correspond to chemical potentials within the range 0.2 eV < μ < 1.2 eV and the model for the graphene conductivity is valid in the limit of low temperatures in the THz spectrum.
机译:在均匀掺杂的石墨烯单层的周期性排列中,电磁波的传播由能带理论描述。我们已经发现,当掺杂水平被顺序调制时,沿着超晶格轴获取周期性,准周期性或谐波轮廓时,该系统的光子响应会丰富。因为支撑石墨烯层的介电背景是均匀的,所以叠加在石墨烯层上的掺杂调制会产生特定的光子能带结构。我们报告说,各层之间的固定间隔会产生一个持久的结构带隙,该宽度可通过门控来调节。我们还证明,遵循连续余弦或半连续方包络函数的掺杂调制会取代微型频带。在我们的计算中,掺杂水平对应于0.2 eV <μ<1.2 eV范围内的化学势,并且石墨烯电导率模型在THz光谱的低温范围内有效。

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