Topological quadratic-node semimetal realized in a photonic microring lattice
POSTER
Abstract
Graphene, with its two linearly dispersing Dirac points with opposite windings, is the minimal topological nodal configuration in the hexagonal Brillouin zone. Topological semimetals with higher-order nodes beyond the Dirac points have recently attracted considerable interest due to their rich chiral physics and their potential for the design of next-generation integrated devices. Here we report the experimental realization of the topological semimetal with quadratic nodes in a photonic microring lattice. Our structure hosts a robust second-order node at the center of the Brillouin zone and two Dirac points at the Brillouin zone boundary—the second minimal configuration, next to graphene, that satisfies the Nielsen–Ninomiya theorem. The symmetry-protected quadratic nodal point, together with the Dirac points, leads to the coexistence of massive and massless components in a hybrid chiral particle. This gives rise to unique transport properties, which we demonstrate by directly imaging simultaneous Klein and anti-Klein tunnelling in the microring lattice.
* This work is supported by the National Science Foundation (NSF) (ECCS-1846766, CMMI-2037097). This work is partially supported by the NSF through the University of Pennsylvania Materials Research Science and Engineering Center (MRSEC) (DMR-1720530) and the University of Pennsylvania Center for Precision Engineering for Health (CPE4H).
Publication: Z. Gao, H. Zhao, T. Wu, X. Feng, Z. Zhang, X. Qiao, C.-K. Chiu, and L. Feng, Topological Quadratic-Node Semimetal in a Photonic Microring Lattice, Nat. Commun. 14, 1 (2023).
Presenters
-
Zihe Gao
Auburn University
Authors
-
Zihe Gao
Auburn University
-
Haoqi Zhao
University of Pennsylvania
-
Tianwei Wu
University of Pennsylvania
-
Xilin Feng
University of Pennsylvania
-
Zhifeng Zhang
University of Pennsylvania
-
Xingdu Qiao
University of Pennsylvania
-
Ching-Kai Chiu
RIKEN iTHEMS
-
Liang Feng
University of Pennsylvania