Hydrogen migration in hypoelectronic biicosahedral metallaborane structures†
Abstract
The biicosahedral metallaboranes CpMB20H17 (M = Pd, Pt; Ru, Os; Mo, W) and CpM′CB19H17 (M′ = Rh, Ir; Re; Ta) have been investigated by density functional theory to supplement the earlier work on the first-row transition metal derivatives CpMB20H17 (M = Ni, Fe) and CpCoCB19H17. The CpMB20H17 (M = Ni, Pd, Pt) and CpMCB19H17 (M = Co, Rh, Ir) systems have the ideal 46 skeletal electrons by the Jemmis rules. Their lowest energy structures have the metal atom in the meta position of the biicosahedron. Hydrogen migration occurs in the low-energy structures of the hypoelectronic systems CpMB20H17 (M = Fe, Ru, Os; Mo, W) to give one or two M–B biicosahedral edges bridged by hydrogen atoms. In CpReCB19H17 and one of the CpTaCB19H17 structures more extensive hydrogen migration occurs to give low-energy structures having terminal M–H bonds and metal vertices of a degree of at least 6. The CpTaCB19H17 system also has a low-energy structure in which the TaCB19 biicosahedron becomes distorted enough to provide a degree 8 vertex for the tantalum atom.