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通过模糊电子束扩展3D纳米打印性能

Expanding 3D Nanoprinting Performance by Blurring the Electron Beam.

作者信息

Seewald Lukas Matthias, Winkler Robert, Kothleitner Gerald, Plank Harald

机构信息

Christian Doppler Laboratory for Direct-Write Fabrication of 3D Nano-Probes, Institute of Electron Microscopy and Nanoanalysis, Graz University of Technology, 8010 Graz, Austria.

Graz Centre for Electron Microscopy, Steyrergasse 17, 8010 Graz, Austria.

出版信息

Micromachines (Basel). 2021 Jan 22;12(2):115. doi: 10.3390/mi12020115.

Abstract

Additive, direct-write manufacturing via a focused electron beam has evolved into a reliable 3D nanoprinting technology in recent years. Aside from low demands on substrate materials and surface morphologies, this technology allows the fabrication of freestanding, 3D architectures with feature sizes down to the sub-20 nm range. While indispensably needed for some concepts (e.g., 3D nano-plasmonics), the final applications can also be limited due to low mechanical rigidity, and thermal- or electric conductivities. To optimize these properties, without changing the overall 3D architecture, a controlled method for tuning individual branch diameters is desirable. Following this motivation, here, we introduce on-purpose beam blurring for controlled upward scaling and study the behavior at different inclination angles. The study reveals a massive boost in growth efficiencies up to a factor of five and the strong delay of unwanted proximal growth. In doing so, this work expands the design flexibility of this technology.

摘要

近年来,通过聚焦电子束进行的添加剂直写制造已发展成为一种可靠的3D纳米打印技术。除了对衬底材料和表面形态的要求较低外,该技术还允许制造具有低至亚20纳米范围特征尺寸的独立3D结构。虽然某些概念(例如3D纳米等离子体)必不可少,但最终应用也可能因机械刚性、热导率或电导率较低而受到限制。为了在不改变整体3D结构的情况下优化这些特性,需要一种控制单个分支直径的方法。基于这一动机,我们在此引入用于可控向上缩放的专用束模糊,并研究不同倾斜角度下的行为。研究表明生长效率大幅提高达五倍之多,并且有效延迟了不需要的近端生长。通过这样做,这项工作扩展了该技术的设计灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/73c1/7911092/ff39e124f582/micromachines-12-00115-g001.jpg

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