Chen Qiaolu, Chen Fujia, Pan Yuang, Cui Chaoxi, Yan Qinghui, Zhang Li, Gao Zhen, Yang Shengyuan A, Yu Zhi-Ming, Chen Hongsheng, Zhang Baile, Yang Yihao
Interdisciplinary Centre for Quantum Information, State Key Laboratory of Modern Optical Instrumentation, ZJU-Hangzhou Global Scientific and Technological Innovation Centre, Zhejiang University, Hangzhou, 310027, China.
International Joint Innovation Centre, Key Lab. of Advanced Micro/Nano Electronic Devices & Smart Systems of Zhejiang, The Electromagnetics Academy at Zhejiang University, Zhejiang University, Haining, 314400, China.
Nat Commun. 2022 Nov 30;13(1):7359. doi: 10.1038/s41467-022-34978-z.
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 quantised 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.
高能物理中的假想外尔费米子已在三维晶体中作为靠近二重简并外尔点的集体准粒子激发被发现。这种动量空间中的外尔费米子携带量子化的手征电荷,可通过计算从相应外尔点发出的费米弧的数量来测量。已知合并单电荷外尔费米子可以产生电荷更多的新外尔费米子。然而,直到最近才意识到存在一个上限——二重外尔点所能容纳的最大电荷数为4——这仅在没有自旋轨道耦合的晶体中才能实现。在此,我们报告了在三维光子晶体中实验实现这种最大电荷数的外尔点。这四个电荷支持四重螺旋面费米弧,在表面布里渊区形成了两个不可收缩环的前所未有的拓扑结构。螺旋面费米弧还展现出长期以来所追寻的II型范霍夫奇点,其可位于任意动量处。这一发现揭示了一种超越晶体中传统拓扑粒子的最大电荷数外尔费米子类型。