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Theory of Ultrafast Low-To-High Spin Crossover in Divalent Iron Systems

ORAL

Abstract

A theory is developed for the ultrafast low-to-high spin crossover in divalent iron. As soon as photoexcitation to the metal-to-ligand charge transfer (MLCT) 1A1 state from the 1A1 metal centered (MC) state occurs a sub 100fs decay to the 5T2 iron MLCT through the 3T1 MLCT state and, finally, a transition between MLCT and MC 5T2 states occurs. A fundamental Hamiltonian is constructed but the most important key to a full and fast transition are the damping mechanisms. The significant energy gap between the MLCT states require a rate damping approach centered on phonon movement to fully activate the 5T2 MLCT state but a novel damping approach, Boltzmann damping, is required to overcome the MLCT to MC gap. Whereas destructive interference suppresses spin-orbit-mediated transitions from MLCT to MC states, the Boltzmann damping connects high-energy MLCT states to low-energy MC states of the same symmetry.

Presenters

  • William Baker

    Northern Illinois University

Authors

  • William Baker

    Northern Illinois University

  • Michel A Van Veenendaal

    Northern Illinois University