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Plasmonic Nano-Oven by Concatenation of Multishell Photothermal Enhancement

机译:多种光热增强串联等离子体纳米炉

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摘要

Metallodielectric multishell nanoparticles are capable of hosting collective plasmon oscillations distributed among different metallic layers, which result in large near-field enhancement at specific regions of the structure, where light absorption is maximized. We exploit this capability of multishell nanoparticles, combined with thermal boundary resistances and spatial tailoring of the optical near fields, to design plasmonic nano-ovens capable of achieving high temperatures at the core region using moderate illumination intensities. We find a large Optical intensity enhancement of similar to 10(4) over a relatively broad core region with a simple design consisting of three metal layers. This provides an unusual thermal environment, which together with the high pressures of similar to 10(5) atm produced by concatenated curved layers holds great potential for exploring physical and chemical processes under extreme optical/thermal/pressure conditions in confined nanoscale spaces, while the outer surface of the nano-oven is close to ambient conditions.
机译:金属二电换电池纳米颗粒能够托管分布在不同的金属层中的集体等离子体振荡,这导致结构的特定区域的近场增强,其中光吸收最大化。我们利用这种多机器纳米粒子的这种能力,结合光学电阻和光学附近的空间剪裁,以设计具有使用中等照明强度在核心区域实现高温的等离子体纳米炉。我们在相对宽的核心区域中找到了类似于10(4)的大的光学强度增强,其简单地由三个金属层组成。这提供了一种不寻常的热环境,其与倾斜弯曲层产生的类似于10(5)个ATM的高压保持巨大的潜力,用于在密闭的纳米空间中的极端光/热/压力条件下探索物理和化学过程,而纳米炉的外表面接近环境条件。

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