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unprecedented precision, one at a time and in real time (Nature, 2010; Nature Nanotechnology, 2012, 2017; Science 2025). The experimental approaches used in our work centre around optical imaging and spectroscopy
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cavities, high Q optical and micro and nano-mechanical resonators for precision sensing, laser locking, optical comb spectroscopy, cavity optomechanics, integrated optomechanical transducers, optical
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molecules used as simulants (organophosphorus agents) such as UV-visible spectroscopy and gas chromatography. TRAINING AND SKILLS Minimum level of education and/or experience required : Doctorate in Process
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of the project is to map these states with Scanning Tunneling Microscopy/Spectroscopy (STM/STS) and where possible, angle-resolved photoemission spectroscopy (ARPES). Your work will focus on the spectroscopy, and
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methodologies (i.e., X-Ray scattering, vibrational spectroscopy, scanning probe microscopy) to monitor dynamic interaction between hydrogen storage molecules and electrified catalyst surfaces for chemical
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spectroscopy, and electron microscopy. Analyse experimental data, interpret results, and contribute to the development of new hypotheses and research directions. Prepare manuscripts for publication in peer
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-technical interlocutors You are proficient in written and oral English (level C1) Knowledge of MRI or magnetic resonance spectroscopy signal processing methods as well as heat transfer mechanisms and
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be used in order to optimize the different growth processes. Crystals will be oriented and shaped then characterized by optical spectroscopy, X-ray diffraction as well as by various chemical and
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, FTIR, AFM Thermal analysis: DSC, DMA, TMA, TGA Electrochemical methods (e.g., Electrochemical Impedance Spectroscopy) are a strong plus 4. Conductive Polymers and Molecular Modeling Research
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deposition is required Experience with surface characterization (contact angle goniometry, electron microscopy, ellipsometry, spectroscopy, etc.) is beneficial Strong analytical skills and ability to work