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Field
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spintronics, or cavity spintronics. Proficiency in scientific software development (e.g., Python, COMSOL, HFSS). Demonstrated ability to work independently and collaboratively in a multidisciplinary environment
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Fabry-Perot interferometry, optical frequency-domain reflectometry, optical time-domain reflectometry, or distributed acoustic sensing. Proficiency in Multiphysics modeling software (ANSYS, COMSOL, MOOSE
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, quantitative data analysis, and simulation using tools such as Python, LabVIEW, MATLAB, Mathematica, Origin, or COMSOL Multiphysics. Background in superconductivity, magnetism, thin films, surfaces and
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theoretical aspects of wave propagation and complex systems. Experience with optical experiments, numerical simulations, or computational modeling. Programming and simulation skills in MATLAB, Python, COMSOL
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computing. Experience with PyBaMM, PyBattMo, COMSOL, FEniCS , or comparable simulation tools is highly desirable. A good understanding of battery electrode architecture, including porosity, tortuosity
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of the following areas: surface characterization using spectroscopy and electron microscopy; macroscale electrochemistry; Finite Element Modeling with COMSOL Multiphysics; and an appreciation
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modelling to support device design and interpretation of experimental results, using COMSOL, ANSYS Fluent or equivalent tools. Process simulation or techno-economic assessment using Aspen Plus, Aspen HYSYS
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modelling to support device design and interpretation of experimental results, using COMSOL, ANSYS Fluent or equivalent tools. Process simulation or techno-economic assessment using Aspen Plus, Aspen HYSYS
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, or integration of gas diffusion electrodes into working devices. Computational fluid dynamics or multiphysics modelling to support device design and interpretation of experimental results, using COMSOL, ANSYS
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design and printing. • Metamaterial design and analysis, preferably with strong expertise in COMSOL Multiphysics. • Strong programming experience: C++, Matlab, Mathematica, Python. • Publications