石墨烯
材料科学
凝聚态物理
太赫兹辐射
磁场
德鲁德模型
电子
有效质量(弹簧-质量系统)
法拉第笼
法拉第效应
光电子学
物理
纳米技术
量子力学
作者
Hongying Mei,Wen Xu,Chao Wang,Haifeng Yuan,Chao Zhang,Lan Ding,Jin Zhang,Chao Deng,Yifan Wang,F. M. Peeters
标识
DOI:10.1088/1361-648x/aab81d
摘要
Magneto-optical (MO) properties of bi- and tri-layer graphene are investigated utilizing terahertz time-domain spectroscopy (THz TDS) in the presence of a strong magnetic field at room-temperature. In the Faraday configuration and applying optical polarization measurements, we measure the real and imaginary parts of the longitudinal and transverse MO conductivities of different graphene samples. The obtained experimental data fits very well with the classical MO Drude formula. Thus, we are able to obtain the key sample and material parameters of bi- and tri-layer graphene, such as the electron effective mass, the electronic relaxation time and the electron density. It is found that in high magnetic fields the electronic relaxation time τ for bi- and tri-layer graphene increases with magnetic field B roughly in a form [Formula: see text]. Most importantly, we obtain the electron effective mass for bi- and tri-layer graphene at room-temperature under non-resonant conditions. This work shows how the advanced THz MO techniques can be applied for the investigation into fundamental physics properties of atomically thin 2D electronic systems.
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