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Large area graphene electromagnetic devices

机译:大面积石墨烯电磁装置

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Large area graphene growth provides a facile route to the development of microwave devices based on the interaction of electromagnetic waves with the two dimensional gas of electrons in a graphene sheet. The strength of microwave scattering with graphene is determined by an impedance mismatch Zσ; whose natural scale is itself determined by the fine structure constant α; = e2/(4π;ε;0hc). Scattering measurements of graphene monolayer loaded waveguides from 17 Hz to 110 GHz reveal a constant sheet conductance with negligible skin effect owing to monolayer atomic thickness. A Drude conductivity tensor can be used to describe the microwave scattering of a graphene sheet under a static magnetic field bias. Measurement of longitudinal conductivity in a Corbino disk geometry can be used to estimate mobility. Transverse conductivity leads to Faraday rotation, which can be used in hollow waveguide structures to implement a gate voltage tunable isolator. As graphene mobility improves, there is potential to exploit both classical and quantum effects in non-reciprocal devices.
机译:基于电磁波与石墨烯片中二维电子气体的相互作用,大面积石墨烯的生长为微波器件的开发提供了一条简便的途径。石墨烯的微波散射强度由阻抗不匹配Zσ决定。其自然尺度本身由精细结构常数α决定; = e2 /(4π;ε; 0hc)。石墨烯单层加载的波导在17 Hz至110 GHz范围内的散射测量结果显示,由于单层原子厚度的原因,恒定的薄层电导率具有可忽略的集肤效应。 Drude电导率张量可用于描述在静磁场偏置下石墨烯片的微波散射。在Corbino圆盘几何形状中纵向电导率的测量可用于估计迁移率。横向电导率导致法拉第旋转,该旋转可用于中空波导结构中以实现栅极电压可调隔离器。随着石墨烯迁移率的提高,有可能在不可逆的器件中同时利用经典效应和量子效应。

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