Computational design and geometry-driven modeling of TiN-based plasmonic metasurface absorbers

A Ahmed Nagaty A Arafa H. Aly W Walied Sabra

Abstract

Abstract We numerically investigate plasmonic metasurface absorbers based on hollow square, hollow cylindrical, and conical nanoantenna geometries fabricated from various plasmonic materials, with emphasis on titanium nitride (TiN) as a refractory alternative to noble metals. Full-wave finite-element simulations in the visible range reveal geometry- and material-dependent absorption behavior, where TiN designs exhibit strong broadband absorption and reduced sensitivity to geometrical variations within the studied parameter space. Fitted analytical models are developed to describe the dependence of wavelength-averaged absorption (400–800 nm) on key structural parameters, enabling reliable performance prediction and efficient optimization. The results show that the intrinsic optical losses and damping properties of TiN support broadband absorption and fabrication tolerance for the examined geometries. This work provides a quantitatively supported framework for designing optimized plasmonic metasurface absorbers for applications such as solar energy harvesting, optical sensing, photothermal conversion, and radiative thermal management.

Article Details

Volume / Issue Vol. 16, Issue 1
Published April 02, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (3)

A

Ahmed Nagaty

A

Arafa H. Aly

W

Walied Sabra