Published September 27, 2024 | Version v1
Journal article

Simultaneous polarization conversion and anomalous reflection with anisotropic printed-circuit-board metagratings

  • 1. Andrew and Erna Viterbi Faculty of Electrical Engineering, Technion - Israel Institute of Technology, Haifa 3200003, Israel

Description

We present a semianalytical synthesis scheme for designing realistic printed-circuit-board- (PCB) based metagratings (MGs), capable of simultaneous beam steering and polarization conversion. These low-profile structures, comprised sparse periodic arrangements of subwavelength polarizable particles (meta-atoms), oriented by insightful analytical models leading to fabrication-ready designs, have gained growing interest in recent years, demonstrating exceptional diffraction engineering capabilities with very high efficiencies. Herein, to facilitate cross-polarization coupling, we introduce a tilted dogbone meta-atom, going beyond the popular vertical (loaded wire) or recently proposed horizontal (dipole) configurations used in common PCB-MG manifestations at microwave frequencies, strictly susceptible to either transverse-electric or transverse-magnetic fields, respectively. As shown, the anisotropy introduced by the in-plane rotation of the dogbones, integrated into the MG analytical model in the form of a rotated dipole line, serves as an additional degree of freedom that can be leveraged to nonlocally manipulate the polarization and trajectory of the incident fields. Verified experimentally, the resultant semianalytical synthesis framework enables valuable physical insights, opening the door to integration of efficient anisotropic MGs in applications requiring both polarization and wavefront control, such as satellite, radar, and advanced antenna systems.

Additional details

Publishing Information

Journal Title
Physical Review Applied
Journal Volume
22
Journal Issue
3
Journal Page Range
18 pgs.
ISSN
2331-7019

Optional Information

Copyright
© 2024 American Physical Society
Notes
Contact Email: Contact author: sharon.elad@campus.technion.ac.il; Contact Email: Contact author: epsteina@ee.technion.ac.il; Record automatically processed