12 density-functional-theory-molecular-dynamics Postdoctoral positions at ICN2 in Spain
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to) SIESTA (www.siesta-project.org) and its TranSIESTA functionality. SIESTA is a multipurpose first-principles method and program, based on Density Functional Theory, which can be used to describe the atomic
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to) SIESTA (www.siesta-project.org) and its TranSIESTA functionality. SIESTA is a multi-purpose first-principles method and program, based on Density Functional Theory, which can be used to describe the atomic
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group (Nanosfun, www.nanosfun.com) is research group at the ICN2. Nanosfun is aimed to develop novel (supra)molecular and polymeric functional nanomaterials with application in Health, Energy-Efficient
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Materials group (Nanosfun, www.nanosfun.com) is research group at the ICN2. Nanosfun is aimed to develop novel (supra)molecular and polymeric functional nanomaterials with application in Health, Energy
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networks and transformers. Practical experience with density functional theory (setups, convergence, interpreting outputs). Strong Python and deep-learning stack (preferably PyTorch); good software practices
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). The job will be essentially related to implementing a novel photonic biosensor platform to be employed for the detection of sepsis biomarkers. If you are interested in joining a young, dynamic, and highly
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valuable insights to help optimize device performance. Additionally, you will support collaborators by assisting with in-situ TEM measurements, facilitating cutting-edge research in sustainability and energy
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advanced STEM-related (e.g.: 4D STEM) atomic scale characterization of state-of-the-art nanomaterials. The position will allow the Junior postdoc to work in a dynamic group. As part of our team, you'll have
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/Project: We are building an optimisation-driven framework that (i) makes AI agents reliably operate advanced scientific software (e.g., DFT, Wannierisation, and quantum-transport codes) and (ii) uses
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Nanophysics group has an intense activity on the use of atomic force microscopy techniques to probe and map functionalities at the nanoscale, with a particular emphasis on piezoresponse force microscopy (PFM