TY - JOUR
T1 - THE BAND STRUCTURE OF HELICAL WAVEGUIDE ARRAYS IN TOPOLOGICAL PHOTONICS
T2 - A TUTORIAL
AU - Zhong, Hua
AU - Mihalache, Dumitru
AU - Shen, Shuang
AU - Zhang, Yiqi
N1 - Publisher Copyright:
© 2024, Publishing House of the Romanian Academy. All rights reserved.
PY - 2024
Y1 - 2024
N2 - The helical waveguide array is a well accepted model for fabricating the photonic topological insulator, since it introduces a gauge field to break the equivalent time-reversal symmetry of the system. However, there is a threshold, from both physical and mathematical point of view, for acquiring the corresponding band structure, especially for the beginners and even grown-up researchers. As far as we know, a tutorial on how to solve this problem is still absent from the scientific literature. To break the technique fence and provide a friendly documentation, we sort out this tutorial in detail based on our almost ten-year work experience in this area. Utilizing the tight-binding method with the nearest-neighbor coupling considered, we provide two methods to numerically calculate the band structure: the Floquet operator method and the Fourier expansion method. The main formulae and key codes are displayed. We believe this tutorial is a useful introduction in topological photonics and may be a shortcut for scientists who would like to venture into research areas related with topological physical objects.
AB - The helical waveguide array is a well accepted model for fabricating the photonic topological insulator, since it introduces a gauge field to break the equivalent time-reversal symmetry of the system. However, there is a threshold, from both physical and mathematical point of view, for acquiring the corresponding band structure, especially for the beginners and even grown-up researchers. As far as we know, a tutorial on how to solve this problem is still absent from the scientific literature. To break the technique fence and provide a friendly documentation, we sort out this tutorial in detail based on our almost ten-year work experience in this area. Utilizing the tight-binding method with the nearest-neighbor coupling considered, we provide two methods to numerically calculate the band structure: the Floquet operator method and the Fourier expansion method. The main formulae and key codes are displayed. We believe this tutorial is a useful introduction in topological photonics and may be a shortcut for scientists who would like to venture into research areas related with topological physical objects.
KW - band structure
KW - helical waveguide array
KW - topological photonics
UR - https://www.scopus.com/pages/publications/85199455920
U2 - 10.59277/RomRepPhys.2024.76.903
DO - 10.59277/RomRepPhys.2024.76.903
M3 - 文章
AN - SCOPUS:85199455920
SN - 1221-1451
VL - 76
JO - Romanian Reports in Physics
JF - Romanian Reports in Physics
IS - 2
M1 - 903
ER -