Discovery of a maximally charged Weyl point
arXiv:2203.10722 · doi:10.1038/s41467-022-34978-z
Abstract
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.
17 pages, 4 figures
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- Realization of the Single-pair-Weyl Phonons with the Maximum Charge Number in Acoustic Crystals
- Fundamental laws of chiral band crossings: local constraints, global constraints, and topological phase diagrams
- Tunneling chirality Hall effect in type-I Weyl semimetals
- All hourglass bosonic excitations in the 1651 magnetic space groups and 528 magnetic layer groups