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Morphology and Microstructure Evolution of Gold Nanostructures in the Limited Volume Porous Matrices

机译:金纳米结构在有限体积多孔基质中的形态学和微观结构演变

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摘要

The modern development of nanotechnology requires the discovery of simple approaches that ensure the controlled formation of functional nanostructures with a predetermined morphology. One of the simplest approaches is the self-assembly of nanostructures. The widespread implementation of self-assembly is limited by the complexity of controlled processes in a large volume where, due to the temperature, ion concentration, and other thermodynamics factors, local changes in diffusion-limited processes may occur, leading to unexpected nanostructure growth. The easiest ways to control the diffusion-limited processes are spatial limitation and localized growth of nanostructures in a porous matrix. In this paper, we propose to apply the method of controlled self-assembly of gold nanostructures in a limited pore volume of a silicon oxide matrix with submicron pore sizes. A detailed study of achieved gold nanostructures’ morphology, microstructure, and surface composition at different formation stages is carried out to understand the peculiarities of realized nanostructures. Based on the obtained results, a mechanism for the growth of gold nanostructures in a limited volume, which can be used for the controlled formation of nanostructures with a predetermined geometry and composition, has been proposed. The results observed in the present study can be useful for the design of plasmonic-active surfaces for surface-enhanced Raman spectroscopy-based detection of ultra-low concentration of different chemical or biological analytes, where the size of the localized gold nanostructures is comparable with the spot area of the focused laser beam.
机译:纳米技术的现代发展需要发现简单的方法,以确保具有预定形态的功能纳米结构的控制形成。最简单的方法之一是纳米结构的自组装。自组装的广泛实施受到大体积中受控过程的复杂性的限制,其中由于温度,离子浓度和其他热力学因素,可能发生扩散限制过程的局部变化,导致意外的纳米结构生长。控制扩散限制过程的最简单方法是多孔基质中纳米结构的空间限制和局部生长。在本文中,我们建议用亚微米孔尺寸在有限的孔氧化物基质的有限孔体积中施加金纳米结构的控制自组装方法。对不同形成阶段的实现金纳序形态,微观结构和表面组合物的​​详细研究是为了理解实现纳米结构的特性。基于所得结果,已经提出了一种用于在有限的体积中生长金纳米结构的机制,该机制可用于具有预定几何形状和组成的纳米结构的控制形成。本研究中观察到的结果对于基于表面增强的拉曼光谱的超低浓度的不同化学或生物分析物的基于表面增强的拉曼光谱检测有用,其中局部金纳米结构的尺寸与聚焦激光束的斑点区域。

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