Finite-Size Effect Induced Spatial-Spectral Mode Splitting in Membrane Metasurfaces
Abstract
This work reports the spatial-spectral engineering and finite-size quantization of optical modes within a triangular-lattice silicon nitride membrane metasurface. Truncating the lattice into a finite square cavity breaks translational symmetry and lifts modal degeneracy, splitting optical modes into discrete cavity-envelope sub-modes. High-resolution photoluminescence (PL) scanning reveals distinct spatial field distributions. The corner-localized sub-mode features the highest Q-factor due to multipolar far-field destructive interference, whereas the core-localized sub-mode exhibits strong radiative coupling. PL mapping reveals a symmetric, four-fold clover-like wavelength arrangement. These results demonstrate that boundary-induced deterministic symmetry can override underlying lattice characteristics, offering a robust strategy for precise spatial-spectral tailoring of light-matter interactions at the nanoscale.
Cite
@article{arxiv.2607.00468,
title = {Finite-Size Effect Induced Spatial-Spectral Mode Splitting in Membrane Metasurfaces},
author = {Chih-Zong Deng and Mu-Hsin Chen and Chun-Hao Chiang and Jui-Han Fu and Vincent Tung and Masanobu Iwanaga and Ya-Lun Ho},
journal= {arXiv preprint arXiv:2607.00468},
year = {2026}
}