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to the development of advanced photonic integrated circuits (PICs) for a wide range of applications, including optical switching and processing. Key Responsibilities: The selected candidate will be expected to: Design
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of advanced photonic integrated circuits (PICs) for optical switching and processing applications. Key Responsibilities: The selected candidate will be expected to: Design, simulate, and optimize integrated
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environment. The successful candidates will be joining the Atomic Quantum Optics group led by Prof. Dr. Morgan Mitchell. Key responsibilities: Conduct experimental research in: Quantum sensing using atomic
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and die level. Design and execute experimental campaigns for the characterization of passive and active photonic devices, including optical losses, responsivity, bandwidth, noise, linearity, and
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(Berry curvature, quantum metric) and experimentally observable high-bias transport and optical signatures in moiré systems, including the study of electronic criticalities. Main tasks and responsibilities
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, liposomes and other vesicular systems. Proven experience in the design, fabrication and operation of microfluidic devices for the controlled production of soft materials. Strong background in polymersome self
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understanding, capabilities and innovation, while inspiring and providing broad training to the next generations of researchers. Our values are Commitment, Collaboration and Transformation. Our research lines
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Institut de Recerca Biomèdica de Lleida, Fundació Dr. Pifarré (IRBLleida) | Spain | about 2 months ago
well as the performance of behavioral tests to evaluate motor activity. o The design and execution of both in vivo and in vitro experiments. o The application and development of cell and molecular biology techniques. Where
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advancing both technology and manufacturing readiness levels. These PIC-based solutions are expected to support the transition from complex optical laboratory setups towards more scalable and deployable
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. The successful candidate will be joining the Nanophotonics Theory group led by Prof. Dr. Javier Garcia de Abajo. We aim to design waveguides integrated within a planar geometry, incorporating efficient in- and