C─C Bond Formation via Reductive Elimination at Rare Earth Centers
Changjiang Wu1,2,3, Hui Guo4, Bingjian Feng1,2
1School of Materials Science and Engineering, Tianjin Key Lab for Rare Earth Materials and Applications, Nankai University, Tianjin, 300350, P.R. China.
Rare earth elements, previously thought incapable of reductive elimination, can now facilitate this crucial reaction. This breakthrough expands the synthetic utility of rare earth complexes in chemistry.
Area of Science:
- Organometallic Chemistry
- Rare Earth Chemistry
- Synthetic Organic Chemistry
Background:
- Reductive elimination is vital for chemical bond formation in transition metal catalysis.
- Rare earth (RE) elements were traditionally excluded from promoting reductive elimination due to their electronic properties.
- This limitation restricted the application of RE complexes in synthetic chemistry.
Purpose of the Study:
- To investigate the reactivity of rare earth complexes in reductive elimination reactions.
- To demonstrate that rare earth centers can indeed promote reductive elimination.
- To expand the synthetic applications of rare earth complexes.
Main Methods:
- Reactions of β-diketiminate-supported dialkyl RE(III) complexes with azobenzene.
- Isolation and structural identification of key intermediates, including a lutetium complex.
- Computational studies to elucidate the reaction mechanism.
Main Results:
- Formation of new RE(III) complexes and a C-C cross-coupled product via reductive elimination.
- Isolation and characterization of a key intermediate demonstrating ortho-H deprotonation.
- Computational analysis revealed the mechanism involving azobenzene π*-orbitals as electron acceptors.
Conclusions:
- Rare earth complexes can promote reductive elimination, challenging previous assumptions.
- The N═N π*-orbitals of azobenzene facilitate the electron transfer for reductive elimination.
- This study opens new avenues for utilizing rare earth elements in synthetic transformations.
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