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the generation of green hydrogen via solar-driven photoelectrochemical (PEC) systems. In this position, you will apply advanced electron microscopy techniques, including STEM to investigate the structure and
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tackles the growth and characterization of innovative magneto-ionic nanomaterials (where magnetic properties are tuned through voltage-driven ion migration) with applicability in (i) energy-efficient and
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Computational Nanoscience group at ICN2 develops theory, models and large-scale simulation tools for quantum transport, spin dynamics and emergent computing in low-dimensional materials, in close contact with
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(CV, GCD, Impedance) for cell characterization. - Writing scientific reports. Requirements: Education: Degree in Chemical Engineering, Material Science and/or Chemistry. Master holding would be a plus
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. (https://gtnam.org/). 'Phonon engineering in precisely assembled atomically thin layers (PETITE)' aims at development of advanced 2D materials with enhanced elastic and thermal anisotropy via phonon
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engineered to improve enzyme stability, targeting efficiency, and bioavailability, including tissues that are currently inaccessible with conventional ERT, and to avoid the immune response. Main Tasks and
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engineered to improve enzyme stability, targeting efficiency, and bioavailability, including tissues that are currently inaccessible with conventional ERT, and to avoid the immune response. Main Tasks and
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call ICN2-SO Technology Valorisation Programme, supported by the Severo Ochoa Grant CEX2021-001214-S/MICIU/AEI/10.13039/501100011033 The selected candidate will contribute to the technical execution
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spectroscopy, and device engineering to explore novel quantum phenomena and develop photonic and optoelectronic concepts for future quantum technologies. The successful candidate will contribute to ongoing
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of green hydrogen via solar-driven photoelectrochemical (PEC) systems. In this postdoctoral position, you will apply advanced electron microscopy techniques, including STEM and FIB, to investigate