TY - JOUR
T1 - A DG-FEM-GSTC Method For Fast Simulation of Metasurfaces with Strong Normal Polarization
AU - Wu, Kaiming
AU - Shuai, Kaier
AU - Ren, Qiang
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - An improved discontinue Galerkin (DG) finite-element method (FEM) incorporated with generalized sheet transition conditions (GSTC) for rapid simulation of metasurfaces is proposed. Replacing the actual electrically small structure of meta-atoms with a zero-thickness sheet with surface polarizations realizes the rapid simulation of the macroscopic field response. Compared with the previous work on the FEM-GSTC method, the improved method takes the normal components of surface polarizations into account, thus it can accurately simulate the metasurfaces with strong response in the normal direction or deal with the oblique incidence problem. We introduce the flux in the DG method to handle the gradient of normal polarizations in FEM, and propose the special treatments at the boundary of the finite GSTC interface. Both two-dimensional and three-dimensional versions of the DG-FEM-GSTC method are presented for different simulation scenarios. Numerical examples including an ideal model and some practical metasurfaces are provided. Comparisons with the results of actual structures obtained from commercial software demonstrate that the improved method can accurately reproduce the macroscopic response of the metasurface, while consuming less computational time and memory resources.
AB - An improved discontinue Galerkin (DG) finite-element method (FEM) incorporated with generalized sheet transition conditions (GSTC) for rapid simulation of metasurfaces is proposed. Replacing the actual electrically small structure of meta-atoms with a zero-thickness sheet with surface polarizations realizes the rapid simulation of the macroscopic field response. Compared with the previous work on the FEM-GSTC method, the improved method takes the normal components of surface polarizations into account, thus it can accurately simulate the metasurfaces with strong response in the normal direction or deal with the oblique incidence problem. We introduce the flux in the DG method to handle the gradient of normal polarizations in FEM, and propose the special treatments at the boundary of the finite GSTC interface. Both two-dimensional and three-dimensional versions of the DG-FEM-GSTC method are presented for different simulation scenarios. Numerical examples including an ideal model and some practical metasurfaces are provided. Comparisons with the results of actual structures obtained from commercial software demonstrate that the improved method can accurately reproduce the macroscopic response of the metasurface, while consuming less computational time and memory resources.
KW - Finite-element method (FEM)
KW - generalized sheet transition conditions (GSTCs)
KW - metasurface
KW - surface susceptibilities tensor
UR - https://www.scopus.com/pages/publications/105020757565
U2 - 10.1109/TAP.2025.3625208
DO - 10.1109/TAP.2025.3625208
M3 - 文章
AN - SCOPUS:105020757565
SN - 0018-926X
JO - IEEE Transactions on Antennas and Propagation
JF - IEEE Transactions on Antennas and Propagation
ER -