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Self-Organized Freestanding One-Dimensional Au Nanopartiele Arrays

机译:自我组织的独立式一维AU纳米粉颗粒阵列

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摘要

One-dimensional Au nanoparticle arrays encapsulated within freestanding SiO2 nanowires are fabricated by thermal oxidation of Au-coated Si nanowires with controlled diameter and surface modulation. The nanoparticle diameter is determined by the Si nanowire diameter and Au film thickness, while the interparticle spacing is independently controlled by the Si nanowire modulation. The optical absorption of randomly oriented Au nanoparticle arrays exhibits a strong plasmonic response at 550 mu. Scanning transmission electron microscopy (STEM)-electron energy loss spectrum (EELS) of nanoparticle arrays confirmed the same plasmonic response and demonstrated uniform optical properties of the Au nanoparticles. The plasmonic response in the STEM-EELS maps is primarily confined around the vicinity of the nanoparticles. On the other hand, examination of the same nanowires by energy-filtered transmission electron microscopy also revealed significant enhancement in the plasmonic excitation in the regions in between the nanoparticles. This versatile route to synthesize one-dimensional Au nanoparticle arrays with independently tailorable nanoparticle diameter and interparticle spacing opens up opportunities to exploit enhanced design flexibility and cost-effectiveness for future plasmonic devices.
机译:封装在独立式SiO2纳米线内的一维Au纳米颗粒阵列通过具有控制直径和表面调制的Au涂覆的Si纳米线的热氧化来制造。纳米颗粒直径由Si纳米线直径和Au膜厚度确定,而颗粒间距由Si纳米线调制独立控制。随机取向的Au纳米颗粒阵列的光学吸收在550μm处表现出强的等离子体响应。扫描透射电子显微镜(茎) - 电子能量损失光谱(EEL)的纳米粒子阵列确认了相同的等离子体响应,并显示出Au纳米颗粒的均匀光学性质。茎鳗映射中的等离子体响应主要围绕纳米颗粒附近。另一方面,通过能量过滤的透射电子显微镜检查相同的纳米线也揭示了纳米颗粒之间的区域中的等离子体激发的显着增强。这种多功能途径合成一维AU纳米颗粒阵列,具有独立可定制的纳米颗粒直径和颗粒间距来开辟了利用增强的设计灵活性和未来等离子体装置的成本效益的机会。

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