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Updated: Jun 16, 2026

High Resolution Phonon-assisted Quasi-resonance Fluorescence Spectroscopy
Published on: June 28, 2016
Aluminum surface lattice resonances for enhanced near-infrared performance in asymmetric environments
Pascal Cheng1, Stéphanie Lau-Truong1, Sarra Gam-Derouich1
1Université Paris Cité, Laboratoire ITODYS, CNRS, F-75006 Paris, France. nordin.felidj@u-paris.fr.
Abstract:
Aluminum (Al) is a cost-effective alternative to noble metals for plasmonics, particularly in the ultraviolet (UV) and visible regions. However, in the near-infrared (NIR) region, its performance is hindered by interband transitions (IBTs) at around 825 nm, leading to increased optical losses and broad resonances. Surface lattice resonances (SLRs) offer a promising solution by enhancing the plasmonic quality factor (Q-factor) through coherent coupling of localized surface plasmon (LSP) modes with Rayleigh anomalies. Although high-Q SLRs have been demonstrated in homogeneous environments, achieving similar enhancements in asymmetric media such as air remains a challenge. This study presents a novel approach for improving the Q factor of aluminum in air by utilizing SLRs in aluminum nanoparticle (NP) arrays fabricated via electron beam lithography (EBL) on a high refractive index indium tin oxide (ITO) substrate. The ITO substrate enhances long-range coupling between NPs, reinforcing coherent interactions. Using absorption micro-spectrometry and finite-difference time-domain (FDTD) simulations, we demonstrate Q factors reaching 110 in air, significantly exceeding typical values in IR in an asymmetrical surrounding medium. Our results establish aluminum as a viable low-cost material for high-performance plasmonic applications in sensing, telecommunications, and optoelectronics.

