IF 4.4 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Nanomaterials Pub Date : 2025-03-18 DOI:10.3390/nano15060458
Viktoriia E Babicheva
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引用次数: 0

摘要

我们研究了声子-极化子激发平面和结构明显边缘的共振特性。我们分析了两种在中红外光谱中支持声子-极化子激发的材料:碳化硅和六方氮化硼,前者的特点是介电常数几乎各向同性,而后者则在光谱区域表现出明显的各向异性,呈现双曲色散。我们提出了一个理论框架,它能准确捕捉涉及声子-极化子的结构激发,预测散射型近场光学显微镜的响应,并对热点位置不确定的复杂共振几何结构有效。我们考虑了探针的敲击运动,对探针的不同高度进行了分析,并使用快速傅立叶变换对信号进行了解调。通过傅立叶解调分析,我们发现整个顶点的光增强是描述所有共振激励和热点响应的最准确特征。我们证明,计算显微镜探针中光增强的解调阶数可以准确预测其成像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effective Polarizability in Near-Field Microscopy of Phonon-Polariton Resonances.

We investigate the resonant characteristics of planar surfaces and distinct edges of structures with the excitation of phonon-polaritons. We analyze two materials supporting phonon-polariton excitations in the mid-infrared spectrum: silicon carbide, characterized by an almost isotropic dielectric constant, and hexagonal boron nitride, notable for its pronounced anisotropy in a spectral region exhibiting hyperbolic dispersion. We formulate a theoretical framework that accurately captures the excitations of the structure involving phonon-polaritons, predicts the response in scattering-type near-field optical microscopy, and is effective for complex resonant geometries where the locations of hot spots are uncertain. We account for the tapping motion of the probe, perform analysis for different heights of the probe, and demodulate the signal using a fast Fourier transform. Using this Fourier demodulation analysis, we show that light enhancement across the entire apex is the most accurate characteristic for describing the response of all resonant excitations and hot spots. We demonstrate that computing the demodulation orders of light enhancement in the microscope probe accurately predicts its imaging.

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来源期刊
Nanomaterials
Nanomaterials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.50
自引率
9.40%
发文量
3841
审稿时长
14.22 days
期刊介绍: Nanomaterials (ISSN 2076-4991) is an international and interdisciplinary scholarly open access journal. It publishes reviews, regular research papers, communications, and short notes that are relevant to any field of study that involves nanomaterials, with respect to their science and application. Thus, theoretical and experimental articles will be accepted, along with articles that deal with the synthesis and use of nanomaterials. Articles that synthesize information from multiple fields, and which place discoveries within a broader context, will be preferred. There is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental or methodical details, or both, must be provided for research articles. Computed data or files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Nanomaterials is dedicated to a high scientific standard. All manuscripts undergo a rigorous reviewing process and decisions are based on the recommendations of independent reviewers.
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