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在金属镜上的纳米颗粒系统中,单个底部小面比随机多小面表现更优。

A single bottom facet outperforms random multifacets in a nanoparticle-on-metallic-mirror system.

作者信息

Devaraj Vasanthan, Lee Jong-Min, Adhikari Samir, Kim Minjun, Lee Donghan, Oh Jin-Woo

机构信息

Bio-IT Fusion Technology Research Institute, Pusan National University, Busan, South Korea.

出版信息

Nanoscale. 2020 Nov 28;12(44):22452-22461. doi: 10.1039/d0nr07188a. Epub 2020 Oct 20.

DOI:10.1039/d0nr07188a
PMID:33079124
Abstract

Highly efficient nanoparticle-on-metallic-mirror (NPOM) systems with a large gap size exhibiting good plasmonic enhancement are desirable for numerous practical applications. Careful, explicit design optimization strategies are required for preparing NPOMs and it is especially important in utilizing spherical nanoparticles. In this work, a new design blueprint for evaluating the role of random facets in spherical nanoparticles was investigated in detail to realize optimal NPOMs. We found that a precise single facet positioned at the nanoparticle's cavity outperformed multiple random facets due to the gap mode contribution. Differences and changes in the plasmonic modes were interpreted with the help of three-dimensional surface charge density mappings. A high-performance, single, bottom-faceted NPOM device with a large gap size (example 20 nm) was realized having 80-50% facet design, resulting in excellent gap mode enhancement. We succeeded in fabricating single bottom-faceted NPOMs (the non-facet region had a smooth spherical surface) with a large-scale unidirectionality (2 cm × 1.5 cm). Simulations and experimental characterizations of these components displayed excellent agreement. Our highly efficient NPOM design with a large gap size(s) enables interesting practical applications in the field of quantum emitters, energy devices, fuel generation and plasmon chemistry.

摘要

具有较大间隙尺寸且表现出良好等离子体增强的高效金属镜上纳米颗粒(NPOM)系统在众多实际应用中备受青睐。制备NPOM需要仔细、明确的设计优化策略,在使用球形纳米颗粒时尤为重要。在这项工作中,详细研究了一种用于评估球形纳米颗粒中随机面作用的新设计蓝图,以实现最佳的NPOM。我们发现,由于间隙模式的贡献,位于纳米颗粒腔处的精确单个面优于多个随机面。借助三维表面电荷密度映射解释了等离子体模式的差异和变化。实现了一种具有大间隙尺寸(例如20 nm)、面设计占比80 - 50%的高性能单底部面NPOM器件,从而实现了出色的间隙模式增强。我们成功制备了具有大规模单向性(2 cm×1.5 cm)的单底部面NPOM(非面区域具有光滑的球形表面)。这些组件的模拟和实验表征显示出极佳的一致性。我们具有大间隙尺寸的高效NPOM设计在量子发射器、能量装置、燃料生成和等离子体化学领域实现了有趣的实际应用。

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