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通过激光播种扩展双金属纳米粒子的等离子体响应。

Expanding the plasmonic response of bimetallic nanoparticles by laser seeding.

作者信息

Peláez R J, Rodríguez C E, Afonso C N

机构信息

Laser Processing Group, Instituto de Óptica, CSIC, Serrano 121, 28006 Madrid, Spain.

出版信息

Nanotechnology. 2016 Mar 11;27(10):105301. doi: 10.1088/0957-4484/27/10/105301. Epub 2016 Feb 11.

Abstract

This work explores a cost-effective route to enhance the tuning range of the optical response of metal nanostructures on substrates beyond the ranges that are achievable through the nanostructure dimensions, composition or dewetting processes. The new route (laser seeding) uses single nanosecond laser pulses to induce dewetting in regions of a metal layer deposited on a glass substrate followed by the deposition of a second metal layer, both layers being deposited by pulsed laser deposition. In order to show the possibilities of this new route, we have chosen that the two metals were different, namely Ag and Au. The comparison of the optical response of these regions to those that were laser irradiated after deposition of the second metal layer shows that while nanoalloyed nanoparticles (NPs) are formed in the latter case, the NPs produced in the former case have a heterogeneous structure. The interface between the two metals is either sharp or a narrow region where they have mixed depending on the laser fluence used. While the nanoalloyed NPs exhibit a single, narrow surface plasmon resonance (SPR), the heterogeneous NPs show broader SPRs that peak in the near infrared and depending on conditions exhibit even two clear SPRs. The laser seeding approach in the conditions used in this work allows for the expansion of the tuning range of the color to the blue-green region, i.e. beyond the region that can be achieved through nanoalloyed NPs (yellow-red region). In addition, the results presented foresee the laser seeding route as a means to produce round and almost isolated NPs in an enhanced range of diameters.

摘要

这项工作探索了一种经济高效的途径,以扩大衬底上金属纳米结构的光学响应调谐范围,使其超出通过纳米结构尺寸、成分或去湿工艺所能达到的范围。这种新途径(激光播种)使用单个纳秒激光脉冲在沉积于玻璃衬底上的金属层区域诱导去湿,随后再沉积第二层金属,两层均通过脉冲激光沉积法沉积。为了展示这种新途径的可能性,我们选择了两种不同的金属,即银和金。将这些区域的光学响应与在沉积第二层金属后进行激光辐照的区域的光学响应进行比较,结果表明,在后一种情况下形成了纳米合金化纳米颗粒(NPs),而在前一种情况下产生的NPs具有异质结构。两种金属之间的界面要么清晰,要么是它们混合的狭窄区域,这取决于所使用的激光能量密度。虽然纳米合金化NPs表现出单一、狭窄的表面等离子体共振(SPR),但异质NPs表现出更宽的SPR,在近红外区域达到峰值,并且根据条件甚至会出现两个清晰的SPR。在本工作所使用的条件下,激光播种方法能够将颜色调谐范围扩展到蓝绿色区域,即超出纳米合金化NPs所能达到的区域(黄红色区域)。此外,所呈现的结果预示着激光播种途径是一种在更大直径范围内制备圆形且几乎孤立的NPs的方法。

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