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Driving electromagnetic field enhancements in tailored gold surface nanostructures: Optical properties and macroscale simulations

机译:推动定制金表面纳米结构中电磁场的增强:光学性质和宏观模拟

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摘要

Gold thin films with remarkable Surface Enhanced Raman scattering activity strongly dependent on their surface nanostructure were grown by nanosecond pulsed laser ablation. By changing the number of the laser pulses, keeping fixed all the other deposition parameters, we deliberately modified the surface nanostructure of the films. These nanostructured films consist of metallic islands separated from each other by inter-island channels. We observed differences in both island sizes and inter-island channel sizes as a function of the laser pulse number. The different optical properties of the films such as the position of the localized surface plasmon resonance absorption peak red shifts with increasing the laser pulse number. We performed Finite-Difference Time-Domain calculations to gain insight on how the surface nanostructure of the film affects its optical properties at the macroscale. Results indicate that the strongest localization of the electromagnetic field, and hence the strongest SERS enhancement, occurs at the channel-shaped gaps between adjacent metal islands. Larger enhancements are found in coincidence with narrower and deeper gaps. The number distribution of SERS active sites as a function of the calculated SERS enhancement factors, whose values range between 10(4) and 10(5), were obtained. Since the inter-island channels are randomly oriented they show no orientation dependence for linearly polarized radiation on a length scale larger than the typical size of the nanostructures, while larger enhancements were observed for circular polarization.
机译:通过纳秒脉冲激光烧蚀来生长具有显着的表面增强拉曼散射活性的金薄膜,该薄膜强烈依赖于其表面纳米结构。通过改变激光脉冲的数量,保持所有其他沉积参数不变,我们刻意修改了膜的表面纳米结构。这些纳米结构的薄膜由通过岛间通道彼此分隔的金属岛组成。我们观察到岛尺寸和岛间通道尺寸的差异是激光脉冲数的函数。薄膜的不同光学性质,例如局部表面等离子体共振吸收峰的位置,随着激光脉冲数的增加而发生红移。我们进行了时差有限域计算,以深入了解薄膜的表面纳米结构如何在宏观上影响其光学性能。结果表明,在相邻金属岛之间的通道形间隙处出现了最强的电磁场定位,因此也出现了最强的SERS增强。发现更大的增强与越来越窄的间隙相吻合。获得了SERS活性位点的数量分布与所计算的SERS增强因子的函数关系,其值范围在10(4)和10(5)之间。由于岛间通道是随机取向的,因此它们对线性偏振辐射的取向没有依赖性,其长度尺度大于纳米结构的典型尺寸,而观察到圆偏振的增强更大。

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  • 来源
    《Applied Surface Science》 |2019年第1期|19-27|共9页
  • 作者单位

    Politecn Milan, Dip Energia, Ctr Nanoengn Mat & Surfaces NEMAS, Winter Sports & Bio Nano Diagnost WIDIBI Lab, Via Ponzio 34-3, I-20133 Milan, Italy;

    CNR, IPCF, Vle FS Alcontres 37, I-98158 Messina, Italy;

    Univ Ontario Inst Technol, Fac Sci, 2000 Simcoe St North, Oshawa, ON L1G 0C5, Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Pulsed laser deposition; Gold nanoparticle; Plasmonics; FDTD;

    机译:脉冲激光沉积;金纳米粒子;等离子体;FDTD;

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