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Optical Interface States Protected by Synthetic Weyl Points
by
Chan, C. T.
, Wang, Qiang
, Liu, Hui
, Zhu, Shining
, Xiao, Meng
in
Crystal structure
/ Crystals
/ Elementary particles
/ Energy bands
/ Fermions
/ Metalloids
/ Momentum
/ Parameters
/ Photonic crystals
/ Physics
/ Substrates
/ Topology
/ Unit cell
2017
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Optical Interface States Protected by Synthetic Weyl Points
by
Chan, C. T.
, Wang, Qiang
, Liu, Hui
, Zhu, Shining
, Xiao, Meng
in
Crystal structure
/ Crystals
/ Elementary particles
/ Energy bands
/ Fermions
/ Metalloids
/ Momentum
/ Parameters
/ Photonic crystals
/ Physics
/ Substrates
/ Topology
/ Unit cell
2017
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Do you wish to request the book?
Optical Interface States Protected by Synthetic Weyl Points
by
Chan, C. T.
, Wang, Qiang
, Liu, Hui
, Zhu, Shining
, Xiao, Meng
in
Crystal structure
/ Crystals
/ Elementary particles
/ Energy bands
/ Fermions
/ Metalloids
/ Momentum
/ Parameters
/ Photonic crystals
/ Physics
/ Substrates
/ Topology
/ Unit cell
2017
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Optical Interface States Protected by Synthetic Weyl Points
Journal Article
Optical Interface States Protected by Synthetic Weyl Points
2017
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Overview
Weyl fermions have not been found in nature as elementary particles, but they emerge as nodal points in the band structure of electronic and classical wave crystals. Novel phenomena such as Fermi arcs and chiral anomaly have fueled the interest in these topological points which are frequently perceived as monopoles in momentum space. Here, we report the experimental observation of generalized optical Weyl points inside the parameter space of a photonic crystal with a specially designed four-layer unit cell. The reflection at the surface of a truncated photonic crystal exhibits phase vortexes due to the synthetic Weyl points, which in turn guarantees the existence of interface states between photonic crystals and any reflecting substrates. The reflection phase vortexes have been confirmed for the first time in our experiments, which serve as an experimental signature of the generalized Weyl points. The existence of these interface states is protected by the topological properties of the Weyl points, and the trajectories of these states in the parameter space resembles those of Weyl semimetal “Fermi arc surface states” in momentum space. Tracing the origin of interface states to the topological character of the parameter space paves the way for a rational design of strongly localized states with enhanced local field.
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