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Scalable, Green Fabrication of Single-Crystal Noble Metal Films and Nanostructures for Low-Loss Nanotechnology Applications

机译:用于低损耗纳米技术应用的单晶贵金属膜和纳米结构的可扩展,绿色制造

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摘要

The confinement of spatially extended electromagnetic waves to nanometer-scale metal structures can be harnessed for application in information processing, energy harvesting, sensing, and catalysis. Metal nanostructures enable negative refractive index, subwavelength resolution imaging, and patterning through engineered metamaterials and promise technologies that will operate in the quantum plasmonics regime. However, the controlled fabrication of high-definition single-crystal subwavelength metal nanostructures has remained a significant hurdle due to the tendency for polycrystalline metal growth using conventional physical vapor deposition methods and the challenges associated with placing solution-grown nanocrystals in desired orientations and locations on a surface to manufacture functional devices. Here, we introduce a scalable and green wet chemical approach to monocrystalline noble metal thin films and nanostructures. The method enables the fabrication of ultrasmooth, epitaxial, single-crystal films of controllable thickness that are ideal for the subtractive manufacture of nanostructures through ion beam milling and additive crystalline nanostructure via lithographic patterning for large-area, single-crystal metasurfaces and high aspect ratio nanowires. Our single-crystal nanostructures demonstrate improved feature quality, pattern transfer yield, reduced optical and resistive losses, and tailored local fields to yield greater optical response and improved stability compared to those of polycrystalline structures-supporting greater local field enhancements and enabling practical advances at the nanoscale.
机译:可以利用空间延伸的电磁波对纳米尺度金属结构的限制,以便在信息处理,能量收集,传感和催化中应用。金属纳米结构通过工程的超材料和Promise技术能够在量子普拉斯语制度中运行的原始折射率,亚波长分辨率成像和图案化。然而,由于使用常规物理气相沉积方法的多晶金属生长的趋势和与将溶液生长的纳米晶体中的所需取向和位置置于所需取向和位置相关联的挑战,所控制的高清单晶亚晶波长金属纳米结构的受控制造仍然是显着的障碍。一种制造功能装置的表面。在这里,我们向单晶贵金属薄膜和纳米结构引入可扩展和绿色的湿化学方法。该方法使得能够制造可控厚度的超级性,外延,单晶膜,其是通过离子束铣削和添加剂结晶纳米结构通过用于大面积,单晶元件和高纵横比的光谱图案化的纳米结构的减法制造纳米线。我们的单晶纳米结构表明了改进的特征质量,图案转移产量,降低的光学和电阻损失,以及定制的局部场,以产生更大的光学响应和与多晶结构相比的更高的稳定性 - 支持更大的本地现场增强,并实现实际进步纳米级。

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