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Effect of μ4-O Sites on the Ultrafast Dynamics of Neutral Magnetic Copper Oxide Clusters
Chase H Rotteger1,2, Carter K Jarman1,2, Hannah G Rucker1,2
1School of Molecular Sciences, Arizona State University, Tempe, Arizona 85287, United States.
Abstract:
The ultrafast dynamics of subnanometer neutral copper oxide clusters is examined with pump-probe spectroscopy. Upon absorption of an ultraviolet (400 nm) photon, all clusters exhibit a subpicosecond lifetime that we attribute to carrier relaxation. We calculate the ground-state structures and spin configurations of the neutral clusters by using density functional theory to identify structural features that facilitate relaxation. By comparing results across 35 clusters, ranging between Cu3O3 and Cu16O8, we find evidence that strong ferromagnetic coupling influences the relaxation dynamics of copper oxide clusters. The total spin magnetic moments increment with addition/subtraction of each Cu atom away from the (Cu2O)n stoichiometry and reach as high as 5μB in the larger clusters examined. The excited-state lifetimes increase almost linearly by ∼40 fs per additional Cu atom on the subpicosecond time scale. In each series, the formation of μ4-O atoms associated with terminal Cu atoms consistently deviates from the trendline by increasing excited-state relaxation rates.
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