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N. Gordillo

Researcher at Autonomous University of Madrid

Publications -  45
Citations -  734

N. Gordillo is an academic researcher from Autonomous University of Madrid. The author has contributed to research in topics: Ion & Diamond. The author has an hindex of 13, co-authored 43 publications receiving 594 citations. Previous affiliations of N. Gordillo include Technical University of Madrid & Centre national de la recherche scientifique.

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Influence of grain boundaries on the radiation-induced defects and hydrogen in nanostructured and coarse-grained tungsten

TL;DR: In this paper, the influence of grain boundaries (GBs) on the radiation-induced defect evolution and on H retention at 300 K, both experimentally and by computer simulations, was studied.
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DC triode sputtering deposition and characterization of N-rich copper nitride thin films: Role of chemical composition

TL;DR: In this article, the chemical composition, structure and electrical properties have been studied as a function of deposition parameters: nitrogen partial pressure (P N 2 ) and DC bias. And the physical properties observed for these films are discussed in relation to nitrogen contents and sputtering parameters.
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Thermal stability of copper nitride thin films: The role of nitrogen migration

TL;DR: In this paper, the atomic composition, structural, morphological and optical properties of N-rich copper nitride thin films have been investigated prior to and after annealing them in vacuum at temperatures up to 300 °C.
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Hydrogen diffusion and trapping in nanocrystalline tungsten

TL;DR: In this article, the hydrogen behavior in nanocrystalline W (ncW) samples with grain size of 5 and 10nm was studied using Molecular Dynamics (MD) with a bond order potential (BOP) for the W-H system.
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Monte-Carlo dosimetry on a realistic cell monolayer geometry exposed to alpha particles.

TL;DR: This paper proposes a method based on high resolution confocal imaging and ion beam analysis in order to import realistic cell nuclei geometries in Monte-Carlo simulations and thus take into account the variety of different geometry encountered in a typical cell population.