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Large Shift and Small Broadening of Br<sub>2</sub> Valence Band upon Dimer Formation with H<sub>2</sub>O: An Ab Initio Study
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Citations
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References
2011
Year
EngineeringComputational ChemistryComplex FormationChemistryElectronic Excited StateSmall BroadeningElectronic StructureMolecular DynamicsSpectra-structure CorrelationDimer FormationQuantum MaterialsPhysicsValence BandsQuantum ChemistrySpectrum CalculationAb-initio MethodExcited State PropertyNatural SciencesCondensed Matter PhysicsApplied PhysicsHydrogen BondHydrogen-bonded LiquidLarge Shift
Valence electronic excitation spectra are calculated for the H(2)O···Br(2) complex using highly correlated ab initio potentials for both the ground and the valence electronic excited states and a 2-D approximation for vibrational motion. Due to the strong interaction between the O-Br and the Br-Br stretching motions, inclusion of these vibrations is the minimum necessary for the spectrum calculation. A basis set calculation is performed to determine the vibrational wave functions for the ground electronic state and a wave packet simulation is conducted for the nuclear dynamics on the excited state surfaces. The effects of both the spin-orbit interaction and temperature on the spectra are explored. The interaction of Br(2) with a single water molecule induces nearly as large a shift in the spectrum as is observed for an aqueous solution. In contrast, complex formation has a remarkably small effect on the T = 0 K width of the valence bands due to the fast dissociation of the dihalogen bond upon excitation. We therefore conclude that the widths of the spectra in aqueous solution are mostly due to inhomogeneous broadening.
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