Related Experiment Video
Updated: Jul 12, 2026

Utilization of Plasmonic and Photonic Crystal Nanostructures for Enhanced Micro- and Nanoparticle Manipulation
Published on: September 27, 2011
Structure modulation of Au/BYIG magneto-plasmonic crystals for efficient Faraday effects and refractive index
Yuchen Fei1, Xuanli Zheng1, Guoqing Zeng1
1Engineering Research Center of Micro-nano Optoelectronic Materials and Devices, Ministry of Education, Fujian Key Laboratory of Semiconductor Materials and Applications, CI Center for OSED, Department of Physics, Xiamen University, Xiamen 361005, People's Republic of China.
None:
The structural characteristics of magneto-plasmonic crystals (MPCs) play a critical role in their performances, but current research often focuses on specific applications with fixed structural designs, leaving a gap in the systematic understanding of how geometric parameters influence their magneto-optical (MO) properties, particularly the evolution and underlying mechanisms of Faraday effects. To address the issue, this study employs the finite-difference time-domain method to numerically investigate the extraordinary optical transmission and MO properties of MPCs composed of a perforated Au film on a bismuth-substituted yttrium iron garnet layer. The influence of key structural parameters-including film thicknesses, hole size, shape (circular/square), periodicity, and arrangement (single/double holes per unit cell)-on the transmission spectra, Faraday rotation, and electric field distribution is systematically analyzed. For single-hole arrays, the optimal circular-hole arrays achieve a transmission of 27.3% and a Faraday rotation of 0.69°, while the optimal square-hole arrays yield 26.2% transmission and 0.67° rotation. Double-hole arrays, particularly with square holes, exhibit enhanced transmission sensitivity to environmental refractive index changes, reaching 174.61 nm/RIU, compared to 113-115 nm/RIU for single-hole structure. Electric field analysis reveals that enhanced coupling between surface plasmon polaritons and localized surface plasmon resonances underpins the improved MO performance. The study demonstrates that while double-hole arrays offer higher sensing sensitivity, single-hole arrays provide a larger figure of merit for MO applications. These findings provide valuable guidelines for designing high-performance MPC devices and plasmonic sensors by elucidating the relationship between structural geometry and performance.

