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Magnetic and quantum confinement effects on electronic and optical properties of graphene ribbons

机译:磁性和量子限制对石墨烯带的电子和光学性质的影响

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Through the tight-binding calculation, we demonstrate that magnetic and quantum confinements have a great influence on the low-energy band structures of one-dimensional (1D) armchair graphene ribbons. The magnetic field first changes 1D parabolic bands into the Hall-edge states which originate in the Landau wavefunctions deformed by one or two ribbon edges. The quantum confinement dominates the characteristics of the Hall-edge states only when the Landau wavefunctions touch two ribbon edges. Then, some of the Hall-edge states evolve as the Landau states when the field strength grows. The partial flat bands (Landau levels), related to the Landau states, appear. The magnetic field dramatically modifies the energy dispersions and it changes the size of the bandgap, shifts the band-edge stales, destroys the degeneracy of the energy bands, induces the semiconductor-metal transition and generates the partial flat bands. The above-mentioned magneto-electronic properties are completely reflected in the low-frequency absorption spectra-the shift of peak position, the change of peak symmetry, the alteration of peak height, the generation of new peaks and the change of absorption edges. As a result, there are magnetic-field-dependent absorption frequencies. The findings show that the magnetic field could be used to modulate the electronic properties and the absorption spectra.
机译:通过紧密结合计算,我们证明了磁性和量子限制对一维(1D)扶手椅石墨烯带的低能带结构有很大影响。磁场首先将一维抛物线带变为霍尔边缘状态,该状态起源于由一个或两个带状边缘变形的朗道波函数。仅当Landau波函数碰到两个带状边缘时,量子限制才控制霍尔边缘状态的特性。然后,随着场强的增加,一些霍尔边缘状态会随着朗道状态而变化。出现与Landau州有关的部分平坦带(Landau层)。磁场显着地改变了能量色散,并改变了带隙的大小,改变了带边缘的陈旧性,破坏了能带的简并性,诱发了半导体-金属的跃迁并产生了部分平坦的能带。上述磁电特性完全反映在低频吸收光谱中,即峰位置的移动,峰对称性的变化,峰高的变化,新峰的产生以及吸收边的变化。结果,存在取决于磁场的吸收频率。研究结果表明,磁场可用于调节电子性能和吸收光谱。

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