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Five-membered N-heterocyclic beryllium(I) compounds: fluctuating electronic structures with ambiphilic reactivity.

Sneha ParambathJishnu Narayanan S JPattiyil Parameswaran
Published in: Dalton transactions (Cambridge, England : 2003) (2023)
The structure, bonding, and reactivity of the five-membered N-heterocyclic beryllium compounds (NHBe), BeN 2 C 2 H 4 (1) and BeN 2 (CH 3 ) 2 C 2 H 2 (2) were studied at the M06/def2-TZVPP//BP86/def2-TZVPP level of theory. The molecular orbital analysis indicates that NHBe is an aromatic 6π-electron system with an unoccupied σ-type sp n -hybrid orbital on Be. Energy decomposition analysis combined with natural orbitals for chemical valence has been carried out with Be and L (L = N 2 C 2 H 4 (1), N 2 (CH 3 ) 2 C 2 H 2 (2)) in their different electronic states as fragments at the BP86/TZ2P level of theory. The results indicate that the best bonding representation can be considered as an interaction between Be + having the 2s 0 2p x 1 2p y 0 2p z 0 electronic configuration and L - . Accordingly, L - forms two donor-acceptor σ-bonds and one electron sharing π-bond with Be + . Compounds 1 and 2 show high proton and hydride affinity at beryllium, indicating its ambiphilic reactivity. The protonated structure results from adding a proton on the lone pair of electrons in the doubly excited state. On the other hand, the hydride adduct is formed by donating electrons from the hydride to an unoccupied σ-type sp n -hybrid orbital on Be. These compounds show very high exothermic reaction energy for adduct formation with two electron donor ligands such as cAAC, CO, NHC, and PMe 3 .
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