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Nanoscale imaging of plasmonic hot spots and dark modes with the photothermal-induced resonance technique

机译:用光热诱导共振技术对等离激元热点和暗模进行纳米成像

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摘要

The collective oscillation of conduction electrons, responsible for the localized surface plasmon resonances, enables engineering nanomaterials by tuning their optical response from the visible to terahertz as a function of nanostructure size, shape, and environment. While theoretical calculations helped tremendously in understanding plasmonic nanomaterials and optimizing their light matter interaction, only a few experimental techniques are available to study these materials with high spatial resolution. In this work, the photothermal-induced resonance (PTIR) technique is applied for the first time to image the dark plasmonic resonance of gold asymmetric split ring resonators (A-SRRs) in the mid-infrared (IR) spectral region with nanoscale resolution. Additionally, the chemically specific PTIR signal is used to map the local absorption enhancement of poly(methyl methacrylate) coated on A-SRRs, revealing hot spots with local enhancement factors up to ≈30 at 100 nm lateral resolution. We argue that PTIR nanoscale characterization will facilitate the engineering and application of plasmonic nanomaterials for mid-IR applications.
机译:负责局部表面等离子体激元共振的传导电子的集体振荡,通过调节纳米结构的大小,形状和环境对可见光到太赫兹光的响应,从而使工程纳米材料成为可能。尽管理论计算在理解等离激元纳米材料和优化其光物质相互作用方面发挥了巨大作用,但只有少数实验技术可用于以高空间分辨率研究这些材料。在这项工作中,首次应用光热诱导共振(PTIR)技术以纳米级分辨率在中红外(IR)光谱区域中成像金不对称裂环共振器(A-SRR)的暗等离子体共振。此外,化学特异的PTIR信号用于绘制涂在A-SRR上的聚(甲基丙烯酸甲酯)的局部吸收增强,在横向分辨率为100 nm时显示热点的局部增强因子高达≈30。我们认为PTIR纳米级表征将促进中红外应用的等离激元纳米材料的工程和应用。

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