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从金属纳米线到超薄晶体 ALD 纳米管:TEM 加热实验揭示的工艺开发和机理。

From metal nanowires to ultrathin crystalline ALD nanotubes: process development and mechanism revealed by TEM heating experiments.

机构信息

Laboratory for Mechanics of Materials and Nanostructures, Empa-Swiss Federal Laboratories for Materials Science and Technology, Thun, Switzerland.

出版信息

Nanoscale. 2023 Jun 1;15(21):9477-9483. doi: 10.1039/d3nr01185b.

Abstract

The creation of hollow nanomaterials based on metal oxides has become an important research topic, as they show potential in a broad range of technical applications. However, the controlled synthesis of long and at the same time thin nanotubes is still challenging. Here we present a universal approach to create ultrathin aluminum oxide nanotubes with a length/diameter ratio of >1200 and minimum wall thickness of ≤4 nm. We use a facile process based on defined heat treatment of specific core-shell nanowires. The metal nanowires act as a template, which is thermally removed during heat treatment until an empty tube is created. The core-shell nanowires are produced by Physical Vapour Deposition (PVD) with a subsequent coating Atomic Layer Deposition (ALD). The custom-built PVD-ALD system enables a direct sample transfer without breaking the vacuum, which allows determining the effect of a native oxide layer on the metal-ALD bonding. In combination with correlative observations, Transmission Electron Microscopy (TEM) heating experiments unravel the dynamical processes going on at small scales. Based on the microscopic analysis, the energetics of the core material is analyzed, giving insights about heat induced effects as well as the phase transition from the amorphous to the crystalline state.

摘要

基于金属氧化物的中空纳米材料的制备已经成为一个重要的研究课题,因为它们在广泛的技术应用中显示出了潜力。然而,对于长而同时又很薄的纳米管的可控合成仍然具有挑战性。在这里,我们提出了一种通用的方法,可以制备长度/直径比大于 1200 且最小壁厚≤4nm 的超薄氧化铝纳米管。我们使用一种基于特定核壳纳米线的定义热处理的简易工艺。金属纳米线作为模板,在热处理过程中被热去除,直到形成空心管。核壳纳米线是通过物理气相沉积(PVD)和随后的原子层沉积(ALD)制备的。定制的 PVD-ALD 系统允许在不破坏真空的情况下直接进行样品转移,从而可以确定本征氧化层对金属-ALD 键合的影响。结合相关观察,透射电子显微镜(TEM)加热实验揭示了小尺度上发生的动力学过程。基于微观分析,对芯材的能量进行了分析,从而深入了解了热诱导效应以及非晶态到晶态的相变。

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