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ultrafast nonlinear optical spectroscopy techniques—such as transient absorption and impulsive vibrational spectroscopy—the role aims to probe polariton-controlled electronic and nuclear dynamics occurring
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Max Planck Institute for Mathematics in the Sciences | Leipzig, Sachsen | Germany | about 24 hours ago
] Subject Areas: Mathematics in the sciences: Applied Analysis; Geometry, Groups, and Dynamics; Nonlinear Algebra; Pattern Formation, Energy Landscapes, and Scaling Laws Appl Deadline: 2025/12/01 11:59PM
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physics Required Related Experience Hands-on experience with ultrafast nonlinear optical spectroscopy (e.g., femtosecond transient absorption), including laser operation, optical alignment, data analysis
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diamond membranes, defect synthesis, quantum experiment development, and optical spectroscopy. The successful candidate will join a dynamic, collaborative team working across the Argonne community and with
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understanding the influence of the dielectric environment on interlayer excitons and unraveling the mechanisms governing domain dynamics, such as flipping and domain wall propagation—central to the emerging
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to bring a next-generation light source online and employ it to explore ultrafast phase transitions, Mott physics, and coupled electron–lattice dynamics in complex materials. The successful candidate will
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, develop experimental methods, carry out planned and new experiments, analyse data, and publish results; Contribute to the group’s dynamics taking part in common research and methodology development
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of models. Experience in analytical and quantitative methods, such as deterministic and stochastic differential equations, integral equations, nonlinear dynamics, probability theory, and stochastic processes
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the area of Partial Differential Equations. The recruited researcher will conduct research in the field of nonlinear dispersive equations, with a particular focus on the dynamics of multisolitons
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in the field of nonlinear dispersive equations, with a particular focus on the dynamics of multisolitons. This research will be carried out within the framework of the ERC project 'INSOLIT,' led by