INFIQC   05475
INSTITUTO DE INVESTIGACIONES EN FISICO- QUIMICA DE CORDOBA
Unidad Ejecutora - UE
artículos
Título:
Real-Time Quantum Dynamics Reveals Complex, Many-Body Interactions in Solvated Nanodroplets
Autor/es:
MARÍA BELÉN OVIEDO; BRYAN M. WONG
Revista:
JOURNAL OF CHEMICAL THEORY AND COMPUTATION
Editorial:
AMER CHEMICAL SOC
Referencias:
Lugar: Washington; Año: 2016
ISSN:
1549-9618
Resumen:
Electronic excitations in the liquid phase are surprisingly rich and considerably more complex than either gas-phase or solid-state systems. While the majority of physical and biological processes take place in solvent, our understanding of nonequilibrium excited-state processes in these condensed phase environments remains far from complete. A central and long-standing issue in these solvated environments is the assessment of many-body interactions, particularly when theentire system is out of equilibrium and many quantum states participate in the overall process. Here we present a microscopic picture of solute?solvent electron dynamics and solvatochromic effects, which we uncover using a new real-time quantum dynamics approach for extremely large solvated nanodroplets. In particular, we find that a complex interplay of quantum interactions underlies our observations of solute?solvent effects, and simple macroscopic solvatochromic shifts can even be qualitatively different at the microscopic molecular level in these systems. By treating both the solvent and the solute on the same footing at a quantum-mechanical level, we demonstrate that the electron dynamics in these systems are surprisingly complex, and the emergence of many-body interactions underlies the dynamics in these solvated systems.