Localized Surface Plasmon Resonance on Two-Dimensional HfSe2 and ZrSe2
Hemendra Nath Jaiswal, Maomao Liu, Simran Shahi, Fei Yao, Qiyi Zhao,, Xinlong Xu, and Huamin Li

TL;DR
This study theoretically investigates the electronic and optical properties of 2D HfSe2 and ZrSe2, revealing their potential for localized surface plasmon resonance applications and how their anisotropic light-matter interactions evolve with layer thickness.
Contribution
It provides a detailed theoretical analysis of LSPR behavior in monolayer and multilayer HfSe2 and ZrSe2, highlighting layer-dependent anisotropy and potential optoelectronic applications.
Findings
Multilayer HfSe2 and ZrSe2 exhibit isotropic LSPR responses.
Monolayer HfSe2 and ZrSe2 show anisotropic LSPR, suppressed out-of-plane.
LSPR wavelength shifts to longer wavelengths with increasing layer number.
Abstract
HfSe2 and ZrSe2 are newly discovered two-dimensional (2D) semiconducting transition metal dichalcogenides (TMDs) with promising properties for future nanoelectronics and optoelectronics. We theoretically revealed the electronic and optical properties of these two emerging 2D semiconductors, and evaluated their performance for the application of localized surface plasmon resonance (LSPR) at extreme conditions: in-plane direction versus out-of-plane direction and monolayer versus multilayer. First, the energy band structure and dielectric constants were calculated for both the monolayer and multilayer structures using Kohn-Sham density functional theory (KS-DFT) with van der Waals (vdW) corrections. A parallel-band effect observed in the monolayer band structure indicates a strong light-matter interaction. Then, based on the calculated dielectric constants, the performance of the LSPR…
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