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Highly conductive and pure gold nanostructures grown by electron beam induced deposition

机译:通过电子束诱导沉积生长的高导电性和纯金纳米结构

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摘要

This work introduces an additive direct-write nanofabrication technique for producing extremely conductive gold nanostructures from a commercial metalorganic precursor. Gold content of 91 atomic % (at. %) was achieved by using water as an oxidative enhancer during direct-write deposition. A model was developed based on the deposition rate and the chemical composition, and it explains the surface processes that lead to the increases in gold purity and deposition yield. Co-injection of an oxidative enhancer enabled Focused Electron Beam Induced Deposition (FEBID)—a maskless, resistless deposition method for three dimensional (3D) nanostructures—to directly yield pure gold in a single process step, without post-deposition purification. Gold nanowires displayed resistivity down to 8.8 μΩ cm. This is the highest conductivity achieved so far from FEBID and it opens the possibility of applications in nanoelectronics, such as direct-write contacts to nanomaterials. The increased gold deposition yield and the ultralow carbon level will facilitate future applications such as the fabrication of 3D nanostructures in nanoplasmonics and biomolecule immobilization.
机译:这项工作介绍了一种添加剂直接写入纳米加工技术,用于从商业金属有机前驱体生产出极导电的金纳米结构。通过在直接写入沉积期间将水用作氧化增强剂,实现了91原子%(原子%)的金含量。根据沉积速率和化学成分开发了一个模型,该模型解释了导致金纯度和沉积产率提高的表面过程。通过共注入氧化增强剂,聚焦电子束诱导沉积(FEBID)(一种用于三维(3D)纳米结构的无掩模,无抗蚀剂沉积方法)可以在单个工艺步骤中直接产生纯金,而无需沉积后纯化。金纳米线的电阻率低至8.8μΩcm。这是迄今为止FEBID所能达到的最高电导率,并为纳米电子学中的应用打开了可能性,例如与纳米材料的直接写入接触。增加的金沉积产量和超低碳含量将促进未来的应用,例如在纳米等离子体技术和生物分子固定化中制造3D纳米结构。

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