论文标题

在电荷中立的压力下,双层石墨烯中的Landau水平阶段

Landau Level Phases in Bilayer Graphene under Pressure at Charge Neutrality

论文作者

Green, Brett R., Sofo, Jorge O.

论文摘要

磁场中的双层石墨烯具有从八个Landau水平的能量接近到中性点的各种有序相。这些级别的特征是轨道$ n = 0,1 $,valley $ξ=+, - $和spin $σ= \ uparrow,\ downarrow $;它们的相对能量在很大程度上取决于库仑相互作用,磁场和层间偏置。我们在Hartree-Fock水平上处理相互作用,包括金属门的影响,层分离,$ P_Z $轨道的空间范围,所有Slonczewski-Weiss-Weiss-McClure紧密结合参数和压力。我们获得基态作为所施加的磁场,偏置和压力的函数。 $ p_z $轨道的门,层分离和范围在不同的长度尺度下削弱了库仑相互作用;这些效果扭曲了相图,但不会改变其拓扑结构。但是,当所有紧密结合参数不扰动时,先前预测的连续转变就会不连续。我们发现,压力增加了非互动量表对库仑能的重要性,库仑能驱动相变在较低场上。除了先前识别的山谷,自旋和部分轨道极化状态外,这还带来了两个尚未预测或观察到相图的实验可访问区域的轨道极化状态。

Bilayer graphene in a magnetic field hosts a variety of ordered phases built from eight Landau levels close in energy to the neutrality point. These levels are characterized by orbital $n=0,1$, valley $ξ=+,-$ and spin $σ=\uparrow,\downarrow$; their relative energies depend strongly on the Coulomb interaction, magnetic field, and interlayer bias. We treat interactions at the Hartree-Fock level, including the effects of metallic gates, layer separation, spatial extent of the $p_z$ orbitals, all Slonczewski-Weiss-McClure tight-binding parameters, and pressure. We obtain the ground state as function of the applied magnetic field, bias, and pressure. The gates, layer separation and extent of the $p_z$ orbitals weaken the Coulomb interaction at different length scales; these effects distort the phase diagram but do not change its topology. However, previously-predicted continuous transitions become discontinuous when all tight-binding parameters are included nonperturbatively. We find that pressure increases the importance of the noninteracting scale with respect to the Coulomb energy, which drives phase transitions to occur at lower fields. This brings two orbitally polarized states not yet predicted or observed into the experimentally accessible region of the phase diagram, in addition to previously-identified valley-, spin-, and partially orbitally polarized states.

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