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Au nanowire junction breakup through surface atom diffusion

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arxiv 1709.09104 v2 pith:GS7ZLGXI submitted 2017-09-26 cond-mat.mtrl-sci

Au nanowire junction breakup through surface atom diffusion

classification cond-mat.mtrl-sci
keywords nanowirefragmentationnanowiresgoldjunctionjunctionstemperaturesdiffusion
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Metallic nanowires are known to break into shorter fragments due to the Rayleigh instability mechanism. This process is strongly accelerated at elevated temperatures and can completely hinder the functioning of nanowire-based devices like e.g. transparent conductive and flexible coatings. At the same time, arranged gold nanodots have important applications in electrochemical sensors. In this paper we perform a series of annealing experiments of gold and silver nanowires and nanowire junctions at fixed temperatures 473, 673, 873 and 973 K (200, 400, 600 and 700 {\deg}C) during a time period of 10 minutes. We show that nanowires are especially prone to fragmentation around junctions and crossing points even at comparatively low temperatures. The fragmentation process is highly temperature dependent and the junction region breaks up at a lower temperature than a single nanowire. We develop a gold parametrization for Kinetic Monte Carlo simulations and demonstrate the surface diffusion origin of the nanowire junction fragmentation. We show that nanowire fragmentation starts at the junctions with high reliability and propose that aligning nanowires in a regular grid could be used as a technique for fabricating arrays of nanodots.

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