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Multidimensional coherent spectroscopy of correlated lattice systems

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arxiv 2411.02389 v1 pith:WB3VFIF2 submitted 2024-11-04 cond-mat.str-el physics.comp-phphysics.opticsquant-ph

classification cond-mat.str-elphysics.comp-phphysics.opticsquant-ph
keywords correlatedcoherentmdcsnonequilibriumsystemsbeenlatticemultidimensional
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Multidimensional coherent spectroscopy (MDCS) has been established in quantum chemistry as a powerful tool for studying the nonlinear response and nonequilibrium dynamics of molecular systems. More recently, the technique has also been applied to correlated electron materials, where the interplay of localized and itinerant states makes the interpretation of the spectra more challenging. Here we use the Keldysh contour representation of effective models and nonequilibrium dynamical mean field theory to systematically study the MDCS signals of prototypical correlated lattice systems. By analyzing the current induced by sequences of ultrashort laser pulses we demonstrate the usefulness of MDCS as a diagnostic tool for excitation pathways and coherent processes in correlated solids. We also show that this technique allows to extract detailed information on the nature and evolution of photo-excited nonequilibrium states.

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  1. Two-dimensional spectroscopy of bosonic collective excitations in disordered many-body systems

    cond-mat.str-el 2025-01 conditional novelty 6.0 of 10

    In disordered bosonic systems, the 2D spectroscopy echo peak is controlled by the ratio of elastic to inelastic self-energies, and interaction-induced quantum fluctuations add broadening that cannot be rephased.

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