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激光冲击诱导侧向压缩对银纳米线的等离子体调谐。

Plasmonic tuning of silver nanowires by laser shock induced lateral compression.

机构信息

Birck Nanotechnology Center, Purdue University, West Lafayette, IN 47906, USA.

出版信息

Nanoscale. 2013 Jul 21;5(14):6311-7. doi: 10.1039/c3nr02104a. Epub 2013 Jun 10.

DOI:10.1039/c3nr02104a
PMID:23749208
Abstract

Laser shock induced lateral compression has been demonstrated to controllably flatten cylindrical silver nanowires. Nanowires with circular cross-sections of diameter 70 nm are significantly shaped laterally, which transformed them to metallic ribbons of huge width of 290 nm and of thickness down to 13 nm, amounting the aspect ratio to as high as 22, at a laser intensity of 0.30 GW cm(-2). Above the laser intensity of 0.30 GW cm(-2) though, nanowires are observed to be ruptured. Lateral deformations of nanowires are achieved without altering longitudinal dimensions. Selected area electron diffraction patterns on the laterally deformed nanowires reveal that the flattening gives rise to twinning under high strain rate deformation without actually degrading crystallinity. As the 1D nanowire turns into a 2D metallic nanoribbon, new plasmonic modes and their combinations emerge. The transverse plasmon mode does not shift substantially, whereas longitudinal modes and their combinations are greatly influenced by lateral deformation. Apart from the transverse mode, which is dominant in a 1D nanowire and diminishes heavily when lateral deformation occurs, there is a presence of several longitudinal plasmonic modes and their combinations for metallic nanoribbons, which are revealed by experimental extinction spectra and also supported by finite-difference time-domain (FDTD) simulation. Such plasmonic tuning of silver nanowires across the visible range demonstrates the capability of a laser shock induced lateral compression technique for various emerging plasmonic applications. The laser shock compression technique has the advantages of flexibility, selectivity and tunability while retaining crystallinity of metallic nanowires, all of which enable it to be a potential candidate for plasmonic tuning of nanogeometries.

摘要

激光冲击诱导的横向压缩已被证明可以可控地使圆柱形银纳米线扁平化。直径为 70nm 的圆形纳米线的横向显著变形,将其转变为宽度为 290nm 的金属带,厚度降至 13nm,纵横比高达 22,激光强度为 0.30GW cm(-2)。然而,在激光强度超过 0.30GW cm(-2)时,观察到纳米线破裂。纳米线的横向变形是在不改变纵向尺寸的情况下实现的。在横向变形的纳米线上进行选区电子衍射图案表明,在高应变速率变形下,扁平化会导致孪晶形成,而不会降低结晶度。随着一维纳米线变成二维金属纳米带,新的等离子体模式及其组合出现。横向等离子体模式没有显著移动,而纵向模式及其组合则受到横向变形的很大影响。除了在一维纳米线中占主导地位并且在横向变形发生时严重衰减的横向模式外,金属纳米带还存在几种纵向等离子体模式及其组合,这通过实验消光光谱得到证实,并得到有限差分时间域 (FDTD) 模拟的支持。这种银纳米线在可见光范围内的等离子体调谐证明了激光冲击横向压缩技术在各种新兴等离子体应用中的能力。激光冲击压缩技术具有灵活性、选择性和可调性的优点,同时保持金属纳米线的结晶度,所有这些都使其成为等离子体调谐纳米几何形状的潜在候选者。

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