Tuning nanostructured Ni-Nb metallic glass thin films by atomic fluence in magnetron sputtering

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
L.B. Lv , W.S. Chae , Q.P. Cao , X.D. Wang , S.Q. Ding , D.X. Zhang , A. Caron , J.Z. Jiang
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引用次数: 0

Abstract

Structure heterogeneity was demonstrated to be the key factor in determining material properties with respect to relatively uniform ones. Here, we reported a deposition power-related nanostructure modulation in magnetron sputtering Ni-Nb metallic glass thin films (MGTFs). With increasing deposition power from 15 W to 120 W, the deposition rate increases from ∼15.3 nm/min to ∼183.6 nm/min. Cauliflower-like morphology gradually changed to randomly distributed nanogranular particles, and the mechanical properties showed remarkable improvement by ∼37 % in nanoindentation hardness, ∼146 % in lateral tensile fracture strength, ∼56 % in micro-pillar compression yielding strength, as well as better wear-resistance and thermal stability. Higher deposition power possesses a larger deposited atom fluence onto the film surface, transferring more kinetic energy per unit time and possibly increasing the substrate temperature. The enhanced adatoms migration facilitated the formation of dense nanocolumn interfaces, resulting in improved mechanical properties. These results uncover the intrinsic relationship between nanostructured morphology and mechanical properties of MGTFs, and can serve as a reference for optimizing the properties of vapor-deposited MGTFs by deposition power.
利用磁控溅射中的原子通量调整纳米结构的镍铌金属玻璃薄膜
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来源期刊
CiteScore
11.30
自引率
3.90%
发文量
130
审稿时长
31 days
期刊介绍: Materials Today Nano is a multidisciplinary journal dedicated to nanoscience and nanotechnology. The journal aims to showcase the latest advances in nanoscience and provide a platform for discussing new concepts and applications. With rigorous peer review, rapid decisions, and high visibility, Materials Today Nano offers authors the opportunity to publish comprehensive articles, short communications, and reviews on a wide range of topics in nanoscience. The editors welcome comprehensive articles, short communications and reviews on topics including but not limited to: Nanoscale synthesis and assembly Nanoscale characterization Nanoscale fabrication Nanoelectronics and molecular electronics Nanomedicine Nanomechanics Nanosensors Nanophotonics Nanocomposites
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