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Field
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environment of the organic molecules have clear impact on the underlying energy landscape and the group uses a variety of structural, spectroscopy and microscopy methods to disentangle the structure-function
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quantum sensors, leveraging state-of-the-art electron microscopy facilities at the Condensed Matter Physics and Materials Science Department (CMPMS) and the Center for Functional Nanomaterials (CFN
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assembly in cancer cells by combining cell biology, advanced microscopy, and biochemical approaches. - He/she will actively participate in communicating his/her results within the laboratory and the
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using microscopy and materials characterization tools (e.g., SEM, AFM, TEM, thermal analysis). Maintain rigorous experimental records and contribute high-quality datasets for internal collaboration
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known gene-regulation activities required for healthy embryo development. The project is highly interdisciplinary spanning advanced microscopy, gene regulation, active matter physics, and computational
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Fluorescence in situ hybridization (FISH, CARD-FISH), advanced microscopy, community sequencing, and metagenomics The work will be carried out in the Archaea group, Section for Microbiology, Department
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, and materials chemistry, with access to advanced infrastructure such as NMR, mass spectrometry, electron microscopy, and chromatographic techniques. Research is conducted in close collaboration with
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-of-the-art techniques to assess the physicochemical properties of nanoparticles, ensuring their stability, drug release kinetics, encapsulation efficiency and electron microscopy imaging. Integrate innovative
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Fluorescence in situ hybridization (FISH, CARD-FISH), advanced microscopy, community sequencing, and metagenomics The work will be carried out in the Archaea group, Section for Microbiology, Department
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responses, α-synuclein pathology Immunofluorescence and confocal microscopy, high-content imaging, quantitative image analysis, SDS-PAGE and Western blot Testing of candidate compounds Contribution to single