德鲁德模型
等离子体子
材料科学
椭圆偏振法
锡
介电常数
光电子学
等离子体
电介质
等离子体振荡
电子
凝聚态物理
薄膜
纳米技术
物理
量子力学
冶金
作者
Deesha Shah,Morris Yang,Zhaxylyk A. Kudyshev,Xiaohui Xu,Vladimir M. Shalaev,I. V. Bondarev,Alexandra Boltasseva
出处
期刊:Nano Letters
[American Chemical Society]
日期:2022-05-31
卷期号:22 (12): 4622-4629
被引量:19
标识
DOI:10.1021/acs.nanolett.1c04692
摘要
Plasmonic transdimensional materials (TDMs), which are atomically thin metals of precisely controlled thickness, are expected to exhibit large tailorability and dynamic tunability of their optical response as well as strong light confinement and nonlocal effects. Using spectroscopic ellipsometry, we characterize the complex permittivity of ultrathin films of passivated plasmonic titanium nitride with thicknesses ranging from 1 to 10 nm. By measuring passivated TiN, we experimentally distinguish between the contributions of an oxide layer and thickness to the optical properties. A decrease in the Drude plasma frequency and increase in the damping in thinner films is observed due to spatial confinement. We explain the experimental trends using a nonlocal Drude dielectric response theory based on the Keldysh-Rytova (KR) potential that predicts the thickness-dependent optical properties caused by electron confinement in plasmonic TDMs. Our experimental findings are consistent with the KR model and demonstrate quantum-confinement-induced optical properties in plasmonic transdimensional TiN.
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