Tuneability and optimum functionality of plasmonic transparent conducting oxide-Ag core-shell nanostructures

IF 2.5 3区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Photonics and Nanostructures-Fundamentals and Applications Pub Date : 2024-11-08 DOI:10.1016/j.photonics.2024.101326
Mohamed K. Zayed , Hesham Fares , Jamal Q.M. Almarashi , Samar Moustafa
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Abstract

Tunning localized surface plasmon resonance (LSPR) in transparent conducting oxides (TCO) has a great impact on various LSPR-based technologies. In addition to the commonly reported mechanisms used for tunning LSPR in TCOs (e.g., size, shape, carrier density modifications via intrinsic and extrinsic doping), integrating them in core-shell structures provides an additional degree of freedom to expand its tunability, enhance its functionality, and widen its versatility through application-oriented core-shell geometrical optimization. In this work, we explore the tuneability and functionality of two TCO nanostructures; indium doped tin oxide (ITO) and gallium doped zinc oxide (GZO) encapsulated with silver shell within the extended theoretical Mie theory formalism. The effect of core and shell sizes on LSPR peak position and line width as well as absorption and scattering coefficients is numerically investigated. Simulations showed that LSPRs of ITO-Ag and GZO-Ag core-shell nanostructures have great tunning capabilities, spanning from VIS to IR spectral range including therapeutic window of human tissue and essential solar energy spectrum. Potential functionality as refractive index sensor (RIS) and solar energy absorber (SEA) are examined using appropriate figure of merits (FoM). Simulations indicate that a geometrically optimized core-shell architecture with exceptional FoMs for RIS and SEA can be realized. Contrary to carrier density manipulation, integrating TCO cores to metallic shells proves to be an effective approach to enhance tunability and optimize functionality for high performance TCO-based plasmonic devices, with minimum impact on the inherited physical and chemical properties of the used TCO-core materials.
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等离子透明导电氧化物-银核壳纳米结构的可调性和最佳功能性
在透明导电氧化物(TCO)中调谐局部表面等离子体共振(LSPR)对各种基于 LSPR 的技术具有重大影响。除了通常报道的用于调谐 TCO 中 LSPR 的机制(如尺寸、形状、通过本征和外征掺杂改变载流子密度)之外,将它们集成到核壳结构中还提供了额外的自由度,可通过面向应用的核壳几何优化来扩展其可调谐性、增强其功能性和拓宽其通用性。在这项工作中,我们在扩展的理论米氏理论模型中探索了两种 TCO 纳米结构(掺铟氧化锡(ITO)和掺镓氧化锌(GZO)银壳封装)的可调性和功能性。数值研究了内核和外壳尺寸对 LSPR 峰值位置和线宽以及吸收和散射系数的影响。模拟结果表明,ITO-Ag 和 GZO-Ag 核壳纳米结构的 LSPR 具有很强的调谐能力,光谱范围从 VIS 到 IR,包括人体组织的治疗窗口和基本的太阳能光谱。利用适当的优点系数(FoM)研究了折射率传感器(RIS)和太阳能吸收器(SEA)的潜在功能。模拟结果表明,经过几何优化的核壳结构可以实现卓越的折射率传感器和太阳能吸收器的优越性。与载流子密度操作相反,将 TCO 内核集成到金属壳上被证明是提高可调性和优化基于 TCO 的高性能等离子器件功能的有效方法,同时对所用 TCO 内核材料的固有物理和化学特性影响最小。
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来源期刊
CiteScore
5.00
自引率
3.70%
发文量
77
审稿时长
62 days
期刊介绍: This journal establishes a dedicated channel for physicists, material scientists, chemists, engineers and computer scientists who are interested in photonics and nanostructures, and especially in research related to photonic crystals, photonic band gaps and metamaterials. The Journal sheds light on the latest developments in this growing field of science that will see the emergence of faster telecommunications and ultimately computers that use light instead of electrons to connect components.
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