论文标题

磁通晶格中拓扑路径融合产生的任何人都带有分级充电

Fractionally charged anyon generated by topological path fusion in magnetic flux lattice

论文作者

Si, Tieyan

论文摘要

Anyon通常以二维电子气体的集体激发,受到强磁场的影响,带有分数电荷和外来统计特征以外的Fermion和Boson。分数量子厅效应(FQHE)是唯一显示AYON和迄今为止分数电荷系列的实验系统。在FQHE或其他物理系统中搜索分数电荷的新系列仍然是理论和实验研究的挑战。在这里,提出了绕过一对通量的绕线路径的拓扑融合理论,以探索分数电荷的物理起源。这种拓扑路径融合理论不仅产生了FQHE中的所有分数电荷的序列,并发现了FQHE和整体量子霍尔效应(IQHE)之间的确切对应关系,而且还预测了FQHE中分数电荷的新序列。此外,预测串行不合理电荷(例如$ 2/(3+ \ sqrt {2})$在磁通的一维晶格中,以及在磁通量的二维晶格中,例如$(1+ \ sqrt {2})$。即使在磁通量的三维网络中,这种拓扑路径融合理论也可以预测到分数为Anyon的序列,该拓扑路径融合理论与Anyon的结晶格模型完全对应。实际上,在没有磁场的多连接时空中,这种拓扑路径融合理论仍然存在,揭示了量子材料中的分数电荷和质量的普遍存在,并具有颗粒的强限制(例如具有多孔纳米结构的光子晶体),并为拓扑量子计算铺平了新的方式。

Anyon usually exists as collective excitation of two dimensional electron gas subjected to strong magnetic field, carrying fractional charges and exotic statistical character beyond fermion and boson. Fractional quantum Hall effect (FQHE) is the only experimental system showing solid evidence of anyon and a serial of fractional charges so far. Searching for new serial of fractional charges in FQHE or other physical system is still a challenge for both theoretical and experimental study. Here a topological fusion theory of propagating paths winding around a pair of fluxes is proposed to explore the physical origin of fractional charges. This topological path fusion theory not only generated all of the existed serial of fractional charges in FQHE and found the exact correspondence between FQHE and integral quantum Hall effect (IQHE), but also predicted new serial of fractional charges in FQHE. Further more, serial irrational charges like $2/(3+\sqrt{2})$ in one dimensional lattice of magnetic fluxes as well as that in two dimensional lattice of magnetic fluxes, such as $(1+\sqrt{2})$, are predicted. Even in three dimensional network of magnetic fluxes, a serial of fractionally charged anyon is predicted by this topological path fusion theory, which has exactly correspondence with the knot lattice model of anyon. In fact, in a multi-connected space time without magnetic field, this topological path fusion theory still holds, revealing an universal existence of fractional charge and mass in quantum material with strong confinement of particles (such as photonic crystal with porous nano-structures) and paving a new way for topological quantum computation.

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