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electrochemical experiments and analyse electrochemical data. Apply spectroscopic techniques, including Raman spectroscopy and nuclear magnetic resonance (NMR), to investigate electrolyte structure and properties
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cases in strong-field THz and X-ray science at FXE and other instruments. In particular, the THz-driven control of magnetic solids and the THz-induced molecular orientational ordering in liquids
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). Description of PhD Project The work will include theoretical and experimental modeling of the response of magnetic nanoparticles in a magnetic field. In addition, mechanisms for potential therapeutic effects
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this project, we modify materials’ surfaces e.g., with respect to their morphology and magnetic properties using electrochemistry, more precisely, electrodeposition. By using abundantly available Fe, Co and Ni
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magnetic properties, enabling completely new interface functionalities in future spintronics. The project combines elements from physics (magnetic and topological properties), chemistry/material technology
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combines single-molecule magnetic tweezers and fluorescence-coupled optical tweezers to directly manipulate and visualize individual chromatin fibers, revealing structural transitions that cannot be resolved
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, encephalomyocarditis virus (EMCV), human cytomegalovirus (HCMV), and AdV5. Where to apply Website https://ibb.edu.pl/en/phd-studies/rekrutacja/ Requirements Research FieldChemistryEducation LevelMaster Degree
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. Background As part of the ANR DISC project (ANR-25-CE51-5071), we aim to conduct an in-depth study of the combination of selective radiofrequency heating (magnetic induction) with structured catalytic
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assays, (iii) development of strategies to mechanically couple molecular motors, (iv) dynamic acquisition of motor-driven movement by high-resolution fluorescence microscopy and/or magnetic/optical
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quantum magnonics; the successful candidate will theoretically investigate quantum properties of propagating spin waves in magnetic materials and see how these can be used for quantum information. Extensive