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聚合物纳米线中填充金属纳米颗粒的大规模生产。

Mass production of polymer nano-wires filled with metal nano-particles.

机构信息

Department of Experimental Physics, Institute of Physics and Astronomy, University of Potsdam, 14476, Potsdam, Germany.

Department of Ultrafast Dynamics in Condensed Matter, Institute of Physics and Astronomy, University of Potsdam, 14476, Potsdam, Germany.

出版信息

Sci Rep. 2017 Aug 17;7(1):8506. doi: 10.1038/s41598-017-08153-0.

Abstract

Despite the ongoing progress in nanotechnology and its applications, the development of strategies for connecting nano-scale systems to micro- or macroscale elements is hampered by the lack of structural components that have both, nano- and macroscale dimensions. The production of nano-scale wires with macroscale length is one of the most interesting challenges here. There are a lot of strategies to fabricate long nanoscopic stripes made of metals, polymers or ceramics but none is suitable for mass production of ordered and dense arrangements of wires at large numbers. In this paper, we report on a technique for producing arrays of ordered, flexible and free-standing polymer nano-wires filled with different types of nano-particles. The process utilizes the strong response of photosensitive polymer brushes to irradiation with UV-interference patterns, resulting in a substantial mass redistribution of the polymer material along with local rupturing of polymer chains. The chains can wind up in wires of nano-scale thickness and a length of up to several centimeters. When dispersing nano-particles within the film, the final arrangement is similar to a core-shell geometry with mainly nano-particles found in the core region and the polymer forming a dielectric jacket.

摘要

尽管纳米技术及其应用不断取得进展,但将纳米级系统连接到微尺度或宏观尺度元件的策略的发展受到缺乏具有纳米和宏观尺度尺寸的结构组件的阻碍。具有宏观长度的纳米线的生产是这里最有趣的挑战之一。有很多策略可以制造由金属、聚合物或陶瓷制成的长纳米条纹,但没有一种策略适合大规模生产大量有序和密集排列的线材。在本文中,我们报告了一种用于制造填充有不同类型纳米颗粒的有序、灵活和独立的聚合物纳米线阵列的技术。该过程利用光敏聚合物刷对 UV 干涉图案的强烈响应,导致聚合物材料的大量重新分布以及聚合物链的局部断裂。这些链可以缠绕成纳米级厚度和长达几厘米的线材。当在薄膜中分散纳米颗粒时,最终的排列类似于核壳几何形状,主要的纳米颗粒位于核心区域,聚合物形成介电外壳。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/022e/5561068/6f835291bcaa/41598_2017_8153_Fig1_HTML.jpg

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