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. This project aims to obtain high-resolution structures of the T4SS pilus by cryo-electron microscopy (cryo-EM), with a clear objective of rapidly generating structural data suitable for publication
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proteins and nucleic acids and in particular RNA - preparation of in vitro cell-free translation extracts - purification of ribonucleic complexes suitable for structural studies by cryo electron microscopy
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on surface chemistry and catalysis, with a focus on understanding how halogenation (fluorine and chlorine) and thermal treatments can tailor the electronic and structural properties of NDs. The postdoc will
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pioneering method for obtaining the full conformational landscapes of biomolecular complexes at atomic scale from cryo electron microscopy (cryo-EM) images. It has been shown that MDSPACE analyzes
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layered semiconductor characterized by an anisotropic crystalstructure and quasi-one-dimensional ribbon-like morphology. Its electronic structure is predicted to host relatively flat bands associated with
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group (depending on the profile, materials under pressure, MOF coordination polymer design, multi-objective optimization Tc/HEDM/reactivity, etc.). - Calculating the electronic structures
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on simulating nanoalloy structures to create a database for materials characterization. The main tasks include running molecular dynamics and Monte Carlo simulations to model nanoalloys under various
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phenomena, precision measurements in gauge-boson sectors, as well as in the upgrade of the Liquid Argon calorimeter electronics and the construction of the new pixel detector for HL-LHC. The group's expertise
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porosity and improving material strength. For these reasons, MICP has emerged as a viable and scalable biotechnology for soil and structural material (e.g., concrete, granite) reinforcement, as
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physico-chemical trends, and extract relevant structural and electronic descriptors to inform the models. Particular attention will be paid to ensuring consistency between theoretical and experimental data