论文标题
发现最大带电的Weyl点
Discovery of a maximally charged Weyl point
论文作者
论文摘要
在三维晶体中发现了高能物理学中的假设Weyl颗粒,作为在两倍变性的Weyl点附近的集体准颗粒激发。这种动量空间Weyl颗粒具有量化的手性电荷,可以通过计算从相应的Weyl点发出的费米弧的数量来测量。众所周知,合并单位充电的Weyl颗粒可以创建带有更多电荷的新颗粒。但是,直到最近才意识到存在一个上限 - 最大电荷数是托管两个左右的最大电荷数是四个 - 仅在没有旋转轨道耦合的晶体中才能实现。在这里,我们报告了在三维光子晶体中这种最大电荷的Weyl点的实验实现。这四个电荷支持四甲基螺旋体弧,形成了表面布里鲁因区域的两个非摘要环的前所未有的拓扑。螺旋式费米弧还表现出长长的II型Van Hove奇异性,可以驻留在任意动量。这一发现揭示了一种超出晶体中常规拓扑颗粒的最大电荷的Weyl颗粒。
The hypothetical Weyl particles in high-energy physics have been discovered in three-dimensional crystals as collective quasiparticle excitations near two-fold degenerate Weyl points. Such momentum-space Weyl particles carry quantized chiral charges, which can be measured by counting the number of Fermi arcs emanating from the corresponding Weyl points. It is known that merging unit-charged Weyl particles can create new ones with more charges. However, only very recently has it been realised that there is an upper limit - the maximal charge number that a two-fold Weyl point can host is four - achievable only in crystals without spin-orbit coupling. Here, we report the experimental realisation of such a maximally charged Weyl point in a three-dimensional photonic crystal. The four charges support quadruple-helicoid Fermi arcs, forming an unprecedented topology of two non-contractible loops in the surface Brillouin zone. The helicoid Fermi arcs also exhibit the long-pursued type-II van Hove singularities that can reside at arbitrary momenta. This discovery reveals a type of maximally charged Weyl particles beyond conventional topological particles in crystals.