| Literature DB >> 29147510 |
Wangyang Ma1, Chao Yu1, Yue Chi1, Tianyang Chen1, Lianjun Wang1,2, Jianhao Yin1, Baosheng Wei1, Ling Xu1, Wen-Xiong Zhang1,3, Zhenfeng Xi1.
Abstract
The chemistry of rare-earth carbene and alkylidene complexes including their synthesis, structure and reaction is a challenging issue because of their high reactivity (or instability) and the lack of synthetic methods. In this work, we report the first synthesis of the bridged bis-alkylidene complexes which feature a 2-butene-1,1,4,4-tetraanion and four Sc-C(sp3) bonds by the reaction of 1,4-dilithio-1,3-butadienes with ScCl3. This reaction proceeds via two key intermediates: an isolable scandacyclopentadiene and a proposed scandacyclopropene. The scandacyclopentadiene undergoes β,β'-C-C bond cleavage to generate the scandacyclopropene, which then dimerizes to afford the bridged bis-alkylidene complex via a cooperative double metathesis reaction. Reaction chemistry study of the bridged bis-alkylidene complex reveals their ligand-based reduction reactivity towards different oxidants such as hexachloroethane, disulfide and cyclooctatetraene.Entities:
Year: 2017 PMID: 29147510 PMCID: PMC5632790 DOI: 10.1039/c7sc02018j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Synthesis of scandacyclopentadiene 2a and bridged bis-alkylidene scandium(iii) complexes 3a–c.
Fig. 1Molecular structure of complex 2a with thermal ellipsoids at 30% probability. H atoms are omitted for clarity.
Fig. 2Molecular structure of complex 3a with thermal ellipsoids at 30% probability. H atoms and two [Li(THF)4]+ counterions are omitted for clarity.
Scheme 2The crossover-reaction between 2a and 2a-D.
Fig. 3DFT calculated energy profiles of related intermediates and transition-states in the generation of 3a-M (red lines: broken bonds; blue lines: newly formed bonds).
Scheme 3Ligand-based reduction reactivity of 3a towards different oxidants.