Computational Study of sp x ( x =1–3)‐Hybridized Be−Be Bonds Stabilized by Amidinate Ligands
Complexes containing odd‐electron Be−Be bonds are still rare until now. Hereby, a series of neutral di‐beryllium amidinate complexes containing a Be−Be bond were explored theoretically. The complexes with direct chelation with the Be 2 dimer by the bidentate amidinate (AMD) ligands are always corres...
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Veröffentlicht in: | Chemistry : a European journal 2020-08, Vol.26 (47), p.10891-10895 |
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Hauptverfasser: | , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Complexes containing odd‐electron Be−Be bonds are still rare until now. Hereby, a series of neutral di‐beryllium amidinate complexes containing a Be−Be bond were explored theoretically. The complexes with direct chelation with the Be
2
dimer by the bidentate amidinate (AMD) ligands are always corresponding to their global minimum structures. The detailed bonding analyses reveal that the localized electrons of the Be−Be fragment can be adjusted by the amount of AMD ligands because each AMD ligand only takes one electron from the Be
2
fragment. Meanwhile, the hybridization of the central Be atom also changes as the number of AMD ligands increases. In particular, the sp
3
‐hybridized single‐electron Be−Be bond is firstly identified in the tri‐AMD‐ligands‐chelated neutral
D
3
h
‐
Be
2
(AMD)
3
complex, which also possesses the higher stability compared to its monoanionic
D
3
h
‐
Be
2
(AMD)
3
−
and monocationic
C
3
‐
Be
2
(AMD)
3
+
analogues. Importantly, our study provides a new approach to obtain a neutral odd‐electron Be−Be bond, namely by the use of radical ligands through side‐on chelation. |
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ISSN: | 0947-6539 1521-3765 |
DOI: | 10.1002/chem.201905230 |