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Realization of mid-infrared graphene hyperbolic metamaterials

机译:中红外石墨烯双曲线超材料的实现

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摘要

While metal is the most common conducting constituent element in the fabrication of metamaterials, graphene provides another useful building block, that is, a truly two-dimensional conducting sheet whose conductivity can be controlled by doping. Here we report the experimental realization of a multilayer structure of alternating graphene and Al2O3 layers, a structure similar to the metal-dielectric multilayers commonly used in creating visible wavelength hyperbolic metamaterials. Chemical vapour deposited graphene rather than exfoliated or epitaxial graphene is used, because layer transfer methods are easily applied in fabrication. We employ a method of doping to increase the layer conductivity, and our analysis shows that the doped chemical vapour deposited graphene has good optical properties in the mid-infrared range. We therefore design the metamaterial for mid-infrared operation; our characterization with an infrared ellipsometer demonstrates that the metamaterial experiences an optical topological transition from elliptic to hyperbolic dispersion at a wavelength of 4.5?μm.
机译:尽管金属是超材料制造中最常见的导电构成元素,但石墨烯提供了另一个有用的构成要素,即真正的二维导电片,其导电性可以通过掺杂来控制。在这里,我们报告了交替石墨烯和Al 2 O 3 层的多层结构的实验实现,该结构类似于通常用于创建可见波长双曲线的金属电介质多层超材料。使用化学气相沉积的石墨烯,而不是剥离或外延的石墨烯,因为层转移方法很容易在制造中应用。我们采用掺杂的方法来增加层的电导率,并且我们的分析表明,掺杂的化学气相沉积石墨烯在中红外范围内具有良好的光学性能。因此,我们设计了用于中红外操作的超材料。我们用红外椭圆偏振仪进行的表征表明,超材料在4.5μm的波长上经历了从椭圆形到双曲线色散的光学拓扑转换。

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