论文标题
$ν= 5/2 $量子厅效应的压缩粒子孔对称PFAFFIAN状态
A Compressed Particle-Hole Symmetric Pfaffian State for $ν= 5/2$ Quantum Hall Effect
论文作者
论文摘要
$ν= 5/2 $分数量子霍尔系统的最新热厅电导实验[Banerjee等人,自然{\ bf559},205(2018)]似乎排除了pfaffian和anti-pfffaffian的排除,并赞成pH-Pfaffian拓扑命令,而现有的数字结果否则会显示出无效的结果。在本文中,我们通过提出一种新的状态,称为压缩的pH-Pfaffian状态,通过“压缩” pH-Pfaffian状态,并以两个通量量子的方式“压缩” pH-Pfaffian状态,以创建两个Abelian Laughlin Type型准粒子的最大值避免的最大值(或最大零数量)。压缩的pH-PFAFFIAF状态不是粒子 - 孔对称,而是具有pH-PFAFFIAFIAN拓扑顺序。在球形几何形状中,压缩的pH-PFAFFIAN状态具有与PFAFFIAN状态相同的磁通量$ N_D = 2n-3 $,从而可以在两种状态之间进行直接的数值比较。在第二个Landau级别中有限障碍系统的确切对角线化的结果表明,通过增加库仑相互作用的短范围成分,基态经历了从Pfaffian状态到压缩的pH-Pfaffian状态的相变,然后进一步进入无处不在的状态。低能量损失的激发态是由于阿贝利安劳克林型准粒子分解为两个非阿布尔准粒子而产生的。
A recent thermal Hall conductance experiment [Banerjee et al., Nature {\bf559}, 205 (2018)] for $ν= 5/2$ fractional quantum Hall system appears to rule out both the Pfaffian and anti-Pfaffian and be in favor of the PH-Pfaffian topological order, while the existing numerical results without disorder have shown otherwise. In this paper we offer a possible resolution by proposing a new state, termed compressed PH-Pfaffian state by "compressing" the PH-Pfaffian state with two flux quanta removed to create two abelian Laughlin type quasiparticles of the maximum avoidance from one another (or of the maximum number of zeros). The compressed PH-Pfaffian state is not particle-hole symmetric but possesses the PH-Pfaffian topological order. In spherical geometry, the compressed PH-Pfaffian state has the same magnetic flux number $N_ϕ= 2N-3$ as the Pfaffian state, allowing a direct numerical comparison between the two states. Results of exact diagonalization of finite disorder-free systems in the second Landau level show that, by increasing the short range component of the Coulomb interaction, the ground state undergoes a phase transition from the Pfaffian state to the compressed PH-Pfaffian state before further entering into a gapless state. The low energy gapped excited states result from the breakup of the abelian Laughlin type quasiparticle into two non-abelian quasiparticles.