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聚合物靶材的磁控溅射:从薄膜到异质金属/等离子体聚合物纳米颗粒

Magnetron Sputtering of Polymeric Targets: From Thin Films to Heterogeneous Metal/Plasma Polymer Nanoparticles.

作者信息

Kylián Ondřej, Shelemin Artem, Solař Pavel, Pleskunov Pavel, Nikitin Daniil, Kuzminova Anna, Štefaníková Radka, Kúš Peter, Cieslar Miroslav, Hanuš Jan, Choukourov Andrei, Biederman Hynek

机构信息

Department of Macromolecular Physics, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech Republic.

Department of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech Republic.

出版信息

Materials (Basel). 2019 Jul 25;12(15):2366. doi: 10.3390/ma12152366.

Abstract

Magnetron sputtering is a well-known technique that is commonly used for the deposition of thin compact films. However, as was shown in the 1990s, when sputtering is performed at pressures high enough to trigger volume nucleation/condensation of the supersaturated vapor generated by the magnetron, various kinds of nanoparticles may also be produced. This finding gave rise to the rapid development of magnetron-based gas aggregation sources. Such systems were successfully used for the production of single material nanoparticles from metals, metal oxides, and plasma polymers. In addition, the growing interest in multi-component heterogeneous nanoparticles has led to the design of novel systems for the gas-phase synthesis of such nanomaterials, including metal/plasma polymer nanoparticles. In this featured article, we briefly summarized the principles of the basis of gas-phase nanoparticles production and highlighted recent progress made in the field of the fabrication of multi-component nanoparticles. We then introduced a gas aggregation source of plasma polymer nanoparticles that utilized radio frequency magnetron sputtering of a polymeric target with an emphasis on the key features of this kind of source. Finally, we presented and discussed three strategies suitable for the generation of metal/plasma polymer multi-core@shell or core-satellite nanoparticles: the use of composite targets, a multi-magnetron approach, and in-flight coating of plasma polymer nanoparticles by metal.

摘要

磁控溅射是一种众所周知的技术,常用于沉积致密薄膜。然而,正如在20世纪90年代所表明的那样,当在足够高的压力下进行溅射以引发由磁控管产生的过饱和蒸气的体相成核/凝聚时,也可能产生各种纳米颗粒。这一发现促使基于磁控管的气体团聚源迅速发展。此类系统已成功用于由金属、金属氧化物和等离子体聚合物制备单一材料的纳米颗粒。此外,对多组分异质纳米颗粒的兴趣日益浓厚,促使人们设计出用于气相合成此类纳米材料(包括金属/等离子体聚合物纳米颗粒)的新型系统。在这篇专题文章中,我们简要总结了气相纳米颗粒制备的基本原理,并强调了多组分纳米颗粒制造领域的最新进展。然后,我们介绍了一种利用聚合物靶材的射频磁控溅射制备等离子体聚合物纳米颗粒的气体团聚源,重点介绍了这种源的关键特性。最后,我们提出并讨论了三种适用于生成金属/等离子体聚合物多核@壳层或核卫星纳米颗粒的策略:使用复合靶材、多磁控管方法以及对等离子体聚合物纳米颗粒进行飞行中金属包覆。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e588/6696368/8e235bde5ee4/materials-12-02366-g007.jpg

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