用于最佳表面增强拉曼光谱的制造友好型极化敏感等离子体光栅

IF 1.9 4区 物理与天体物理 Q3 OPTICS Journal of the European Optical Society-Rapid Publications Pub Date : 2020-11-07 DOI:10.1186/s41476-020-00144-5
Arpan Dutta, Tarmo Nuutinen, Khairul Alam, Antti Matikainen, Peng Li, Eero Hulkko, J. Jussi Toppari, Harri Lipsanen, Guoguo Kang
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引用次数: 1

摘要

等离子体纳米结构广泛应用于表面增强拉曼光谱(SERS),从紫外到近红外应用。周期性纳米等离子体系统,如等离子体光栅,由于其强极化依赖性和易于制造而成为sers活性衬底。在这项工作中,我们模拟了一个银光栅,它表现出副辐射等离子体共振,其反射率下降,仅对光的横磁(TM)偏振有显著的近场增强。我们研究了填充因子(通常定义为光栅槽宽度与光栅周期之间的比率)对SERS增强的作用。我们使用时域有限差分(FDTD)模拟设计了具有不同填充因子的多个光栅,以在拉曼激发(488?nm)下的反射下降中纳入不同程度的光谱失谐。我们的数值研究表明,通过调整光栅光共振的光谱位置,通过修改光栅的填充因子,我们可以优化可实现的SERS增强。此外,通过改变激发光的偏振从横磁到横电,我们可以使光栅的光学共振失效,从而使SERS性能可以忽略不计。为了验证这一点,我们制作并光学表征了建模光栅,并确保在其光学响应中存在所需的失谐。我们对核黄素的拉曼分析证实,光栅共振和预期拉曼激发之间的较高重叠仅对TM偏振光产生更强的拉曼增强。我们的研究结果为制造友好型等离子体光栅的发展提供了见解,该光栅通过激发光的偏振来实现拉曼信号的最佳强化,并具有额外的控制程度。这一特性可以通过改变激发的极化来研究具有和不具有电磁SERS增强的完全相同分子的拉曼信号,从而可以详细研究SERS可能涉及的选择规则和化学增强。
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Fabrication-friendly polarization-sensitive plasmonic grating for optimal surface-enhanced Raman spectroscopy

Plasmonic nanostructures are widely utilized in surface-enhanced Raman spectroscopy (SERS) from ultraviolet to near-infrared applications. Periodic nanoplasmonic systems such as plasmonic gratings are of great interest as SERS-active substrates due to their strong polarization dependence and ease of fabrication. In this work, we modelled a silver grating that manifests a subradiant plasmonic resonance as a dip in its reflectivity with significant near-field enhancement only for transverse-magnetic (TM) polarization of light. We investigated the role of its fill factor, commonly defined as a ratio between the width of the grating groove and the grating period, on the SERS enhancement. We designed multiple gratings having different fill factors using finite-difference time-domain (FDTD) simulations to incorporate different degrees of spectral detunings in their reflection dips from our Raman excitation (488?nm). Our numerical studies suggested that by tuning the spectral position of the optical resonance of the grating, via modifying their fill factor, we could optimize the achievable SERS enhancement. Moreover, by changing the polarization of the excitation light from transverse-magnetic to transverse-electric, we can disable the optical resonance of the gratings resulting in negligible SERS performance. To verify this, we fabricated and optically characterized the modelled gratings and ensured the presence of the desired detunings in their optical responses. Our Raman analysis on riboflavin confirmed that the higher overlap between the grating resonance and the intended Raman excitation yields stronger Raman enhancement only for TM polarized light. Our findings provide insight on the development of fabrication-friendly plasmonic gratings for optimal intensification of the Raman signal with an extra degree of control through the polarization of the excitation light. This feature enables studying Raman signal of exactly the same molecules with and without electromagnetic SERS enhancements, just by changing the polarization of the excitation, and thereby permits detailed studies on the selection rules and the chemical enhancements possibly involved in SERS.

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来源期刊
CiteScore
2.40
自引率
0.00%
发文量
12
审稿时长
5 weeks
期刊介绍: Rapid progress in optics and photonics has broadened its application enormously into many branches, including information and communication technology, security, sensing, bio- and medical sciences, healthcare and chemistry. Recent achievements in other sciences have allowed continual discovery of new natural mysteries and formulation of challenging goals for optics that require further development of modern concepts and running fundamental research. The Journal of the European Optical Society – Rapid Publications (JEOS:RP) aims to tackle all of the aforementioned points in the form of prompt, scientific, high-quality communications that report on the latest findings. It presents emerging technologies and outlining strategic goals in optics and photonics. The journal covers both fundamental and applied topics, including but not limited to: Classical and quantum optics Light/matter interaction Optical communication Micro- and nanooptics Nonlinear optical phenomena Optical materials Optical metrology Optical spectroscopy Colour research Nano and metamaterials Modern photonics technology Optical engineering, design and instrumentation Optical applications in bio-physics and medicine Interdisciplinary fields using photonics, such as in energy, climate change and cultural heritage The journal aims to provide readers with recent and important achievements in optics/photonics and, as its name suggests, it strives for the shortest possible publication time.
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