TY - JOUR
T1 - Photonic analog of bilayer graphene
AU - Oudich, Mourad
AU - Su, Guangxu
AU - Deng, Yuanchen
AU - Benalcazar, Wladimir
AU - Huang, Renwen
AU - Gerard, Nikhil J.R.K.
AU - Lu, Minghui
AU - Zhan, Peng
AU - Jing, Yun
N1 - Publisher Copyright:
© 2021 American Physical Society.
PY - 2021/6/1
Y1 - 2021/6/1
N2 - Drawing inspiration from bilayer graphene, this paper introduces its photonic analog comprising two stacked graphenelike photonic crystals that are coupled in the near field through spoof surface plasmons. Beyond the twist degree of freedom that can radically alter the band structure of the bilayer photonic graphene, the photonic dispersion can be also tailored via the interlayer coupling which exhibits an exponential dependence on the distance between the two photonic crystals. We theoretically, numerically, and experimentally characterize the band structures of AA- and AB-stacked bilayer photonic graphene, as well as for twisted bilayer photonic graphene with even and odd sublattice exchange symmetries. Furthermore, we numerically predict the existence of magic angles in bilayer photonic graphene, which are associated with ultraflat bands resulting from interlayer hybridization. Finally, we demonstrate that the bilayer photonic graphene at a particular twist angle satisfying even sublattice exchange symmetry is a high-order photonic topological insulator. The proposed bilayer photonic graphene could constitute a useful platform for identifying new quantum materials and inspiring next-generation photonic devices with new degrees of freedom and emerging functionality.
AB - Drawing inspiration from bilayer graphene, this paper introduces its photonic analog comprising two stacked graphenelike photonic crystals that are coupled in the near field through spoof surface plasmons. Beyond the twist degree of freedom that can radically alter the band structure of the bilayer photonic graphene, the photonic dispersion can be also tailored via the interlayer coupling which exhibits an exponential dependence on the distance between the two photonic crystals. We theoretically, numerically, and experimentally characterize the band structures of AA- and AB-stacked bilayer photonic graphene, as well as for twisted bilayer photonic graphene with even and odd sublattice exchange symmetries. Furthermore, we numerically predict the existence of magic angles in bilayer photonic graphene, which are associated with ultraflat bands resulting from interlayer hybridization. Finally, we demonstrate that the bilayer photonic graphene at a particular twist angle satisfying even sublattice exchange symmetry is a high-order photonic topological insulator. The proposed bilayer photonic graphene could constitute a useful platform for identifying new quantum materials and inspiring next-generation photonic devices with new degrees of freedom and emerging functionality.
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U2 - 10.1103/PhysRevB.103.214311
DO - 10.1103/PhysRevB.103.214311
M3 - Article
AN - SCOPUS:85108969462
SN - 2469-9950
VL - 103
JO - Physical Review B
JF - Physical Review B
IS - 21
M1 - 214311
ER -