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Published on: March 2, 2016
Coating the fullerene: evaluation of the core-shell interaction nature in a saturated exohedral cuprofullerene
Raul Guajardo-Maturana1, Carlos Rivera2, Peter L Rodríguez-Kessler3
1Universidad SEK, Facultad de Ciencias de la Salud, Instituto de Investigación Interdisciplinar en Ciencias Biomédicas SEK (I3CBSEK) Chile, Fernando Manterola, 0789, , Providencia, Santiago, Chile.
Abstract:
C60 fullerene exhibits a unique structure and properties ideal for forming materials for nanoscale electronic devices. The formation of an exohedral metallofullerene array has been characterized, which reveals a concentric triple core-shell C60@Cu30@Cl36N12 architecture in [C60@Cu30Cl36(Cu(PhCH2NH2)2)6]6- (1), involving saturated coordination over the fullerene surface. The calculated interaction between C60 and the fully coated shell is strong, amounting to -675.4 kcal mol-1, predominantly electrostatic in nature, in contrast to the dispersion-dominated and weaker interaction in the partially coated analogue (-104.5 kcal mol-1). As a result, in 1, thirty Cu-CC interactions exhibit similar coordination characteristics to copper-ethane complexes. The metallic coating induces a symmetry reduction in the C60 cage (from Ih to Th), giving rise to three distinct 13C NMR shifts, and facilitates substantial charge transfer (1.88e-) to the fullerene. Notably, a dramatic shift in NICS(0) (-2.08 → -10.9 ppm) reveals a breakdown of the Faraday cage behavior, indicating through-space magnetic shielding effects arising from the outer shell. The fully coated fullerene-based architectures point to tailored modulation of fullerene properties via metal-layer design, advancing prospects for tunable molecular devices.
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