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Field
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supramolecular systems and of stimuli-responsive (e.g. photoswitchable) properties; familiarity with structural characterization of materials using X-ray (e.g. XRD, SAXS, WAXS) and/or microscopy (TEM, SEM, AFM
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, or gel-polymer systems Experience with organic electrode materials, metal-organic frameworks (MOFs), or coordination polymers. Familiarity with advanced characterisation techniques such as XPS, SEM/TEM
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. Utilize a variety of analytical, spectroscopic, and microscopic techniques (FTIR, UV–Vis, XRD, DLS, SEM–EDS, TEM, TGA/DSC) for material characterization. Collaborate effectively within an interdisciplinary
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, UV–Vis, XRD, DLS, SEM–EDS, TEM, TGA/DSC) for material characterization. Collaborate effectively within an interdisciplinary team. Maintain accurate and detailed records of all experiments, data, and
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structure-materials property relationship, x) Dynamic covalent bonds, xi) Nanomaterials and nanocomposites, xii) nanomaterials' analysis (e.g. Raman, TEM, SEM, X-Ray). The postdoc’s duties will include
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using scanning and transmission electron microscopy (SEM and TEM); investigating the release kinetics of active substances from nanoparticles under conditions simulating the target environment; conducting
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techniques such as XPS, AFM, TEM, NMR, XRD, SEM/EDX, DVS, ICP, and nutrients release kinetics, and nutrient analysis. Ability to design and conduct multidisciplinary research combining materials science
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leverage state-of-the-art in-situ transmission electron microscopy (TEM), including Lorentz TEM, and will have the opportunity to utilize other advanced techniques, such as ultrafast electron microscopy
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Engineering, Biomedical Engineering, Nanotechnology, or related fields Strong experience in inorganic nanoparticle synthesis and characterization Hands-on expertise with techniques such as TEM, DLS, UV–Vis
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XPS, UPS, FTIR, NMR, TEM, XRD, absorption, PL, and time-resolved PL. Fabricate CQD thin films and evaluate morphology, conductivity, trap density, and stability. Study band alignment between CQDs and