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Nicolas Argibay

Researcher at Sandia National Laboratories

Publications -  78
Citations -  1594

Nicolas Argibay is an academic researcher from Sandia National Laboratories. The author has contributed to research in topics: Grain boundary & Electrical contacts. The author has an hindex of 20, co-authored 64 publications receiving 1071 citations. Previous affiliations of Nicolas Argibay include University of Florida & ETH Zurich.

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Mechanistic Studies in Friction and Wear of Bulk Materials

TL;DR: In this article, a review of recent contributions from recent experimental investigations of three classes of materials that exhibit uniquely contrasting tribological behaviors: metals, polymers, and ionic solids is presented.
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Grain boundary segregation in immiscible nanocrystalline alloys

TL;DR: Based on a diffuse interface model, this paper examined grain growth dynamics in immiscible nanocrystalline (NC) alloys, where both grain boundary (GB) solute segregation and bulk phase separation act in conjunction.
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Impact of Microstructure on MoS2 Oxidation and Friction

TL;DR: Investigation of oxidation and friction for two MoS2 films with distinctively different microstructures-amorphous and planar/highly-ordered- before and after exposure to atomic oxygen (AO) and high-temperature (250 °C) molecular oxygen shows comparable oxidation of both coatings via AO; however, monolayer resolved compositional depth profiles from HS-LEIS reveal that the microstructure of the ordered coatings limits oxidation to the first atomic layer.
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Mechanical and Corrosion Properties of Additively Manufactured CoCrFeMnNi High Entropy Alloy

TL;DR: In this article, the authors investigated the mechanical and corrosion properties of as-built and annealed equiatomic CoCrFeMnNi alloy produced by laser-based directed energy deposition (DED) additive manufacturing.
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High-throughput additive manufacturing and characterization of refractory high entropy alloys

TL;DR: In this article, a high-throughput alloy processing and characterization methodology, leveraging laser-based metal additive manufacturing (AM) and mechanical testing techniques, is presented to enable rapid exploration of RHEAs/RCCAs.