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(laser, X-rays, electrons, ions, etc.). It accounts for the hydrodynamic evolution of fluid or solid materials (including mechanical effects), energy deposition of different types, thermal conduction
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. - Process, analyze and interpret mass spectrometry data and complementary analytical data. - Assess the performance and limitations of the different approaches and propose methodological improvements
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selectivity between materials and minimize plasma-induced damage, will be evaluated as part of this study. To achieve this objective, it will be necessary to understand the etching mechanisms of the different
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for studying and engineering electronic properties in quantum materials. By stacking different two-dimensional (2D) materials, it is possible to create systems with new and tunable properties. In
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such as the chloroplast and mitochondria must be revealed to fully understand how organisms respond to their environment. 3D electron microscopy has become one of the essential approaches for revealing and
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of the ligand. In this way, we propose to identify ligands of different sizes and negative charges that can be used to synthesize and characterize metallic molecular structures, taking into account the
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(PTM/PCM)) and to implement it to produce a large-scale device. The main activities are aimed at: - Depositing GeTe films with different stoichiometries using DC magnetron sputtering - Investigating
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researchers from different scientific disciplines and, where applicable, with industrial and space-sector partners. The successful candidate will have access to relevant laboratory facilities and
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configuration. First experiments will be performed in a 70-T magnet, at variable temperatures from 1.5 to 300 K, with the aim to investigate correlated-electron quantum materials. A study of the superconductor
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practical expertise in at least one of the project’s core areas: structural biology, particularly X-ray crystallography or cryo-electron microscopy; protein biochemistry, including protein purification and