Probing the presence and absence of metal-fullerene electron transfer reactions in helium nanodroplets by deflection measurements
arXiv:2204.11462 · doi:10.1039/D2CP00751G
Abstract
Metal-fullerene compounds are characterized by significant electron transfer to the fullerene cage, giving rise to an electric dipole moment. We use the method of electrostatic beam deflection to verify whether such reactions take place within superfluid helium nanodroplets between an embedded C molecule and either alkali (heliophobic) or rare-earth (heliophilic) atoms. The two cases lead to distinctly different outcomes: CNa (=1-4) display no discernible dipole moment, while CYb is strongly polar. This suggests that the fullerene and small alkali clusters fail to form a charge-transfer bond in the helium matrix despite their strong van der Waals attraction. The CYb dipole moment, on the other hand, is in agreement with the value expected for an ionic complex.
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