| Literature DB >> 31007578 |
Dide G A Verhoeven1, Joost Kwakernaak1, Maxime A C van Wiggen1, Martin Lutz2, Marc-Etienne Moret1.
Abstract
The hydrosilylation of unsaturated compounds homogeneously catalyzed by cobalt complexes has gained considerable attention in the last years, aiming at substituting precious metal-based catalysts. In this study, the catalytic activity of well-characterized CoII and CoI complexes of the pToldpbp ligand is demonstrated in the hydrosilylation of 1-octene with phenylsilane. The CoI complex is the better precatalyst for the mentioned reaction under mild conditions, at 1 mol-% catalyst, 1 h, room temperature, and without solvent, yielding 84 % of octylphenylsilane. Investigation of the substrate scope shows lower performance of the catalyst in styrene hydrosilylation, but excellent results with allylbenzene (84 %) and acetophenone (> 99 %). This catalytic study contributes to the field of cobalt-catalyzed hydrosilylation reactions and shows the first example of catalysis employing the dpbp ligand in combination with a base metal.Entities:
Keywords: Cobalt; Cooperative catalysis; Homogeneous catalysis; Hydrosilylation; Silane chemistry
Year: 2019 PMID: 31007578 PMCID: PMC6472597 DOI: 10.1002/ejic.201801221
Source DB: PubMed Journal: Eur J Inorg Chem ISSN: 1434-1948 Impact factor: 2.524
Figure 1Examples of cobalt catalysts for hydrosilylation reactions. P in rightmost structure: PiPr2.
Figure 2Structures of Rdpbp (left), (Rdpbp)CoCl2 (middle), and (Rdpbp)CoCl (right). 1, 2, 3: R = Ph; 1, 2, 3: R = p‐tolyl.
Scheme 1Synthesis of 1.
Figure 3X‐ray crystal structures of 2 (top) and 3 (bottom).39 Hydrogen atoms are omitted for clarity and the ellipsoids are shown at 50 % probability level. In 2: the co‐crystallized THF molecule was omitted for clarity.
Crystal structure comparison of the cobalt complexes. Selected distances [Å] and angles [°]
| Co–O1 | Co–C7 | C7–O1 | P1–Co–P2 | Dihedral angle | IR C=O cm–1 | |
|---|---|---|---|---|---|---|
|
| 2.9255(13) | 3.2896(18) | 1.227(2) | 116.676(18) | 36.16(9) | 1647 |
|
| 3.0474(13) | 3.3599(15) | 1.2262(19) | 115.734(16) | 34.03(8) | 1663 |
|
| 1.947(3) | 2.071(5) | 1.307(6) | 109.62(6) | 64.2(2) | ≈ 1300 |
The dihedral angle is calculated between the two phenyl rings connected to the carbonyl group.
Hydrosilylation of 1‐octene with PhSiH3 with the cobalt complexesa
|
| |||||||
|---|---|---|---|---|---|---|---|
| Cat. | Conv. silane | Conv. alkene | Prod. yield | Isom. 1‐oct | Octane | Ph2SiH2
| |
| 1 |
| 98 | 98 | 84 | 6 | 2 | 5 |
| 2 | No cat | – | – | – | – | – | – |
| 3 | CoCl2 | 16 | 4 | – | – | – | – |
| 4 | CoCl2 + PPh3 | 95 | 3 | – | 3 | Traces | – |
| 5 |
| 60 | 42 | 32 | 4 | 1 | – |
| 6 |
| 99 | 98 | 75 | 5 | 2 | 3 |
| 7 |
| 99 | 99 | 86 | 6 | 1 | 3 |
All amounts are all given in percentage. Conversion is determined by GC (Supporting Information).
Amount of SiH4 is considered equimolar to Ph2SiH2.
Scheme 2Observed side‐products and possible side‐reaction pathways.
Substrate scope of the hydrosilylation reactions with 3 a
|
| ||||||
|---|---|---|---|---|---|---|
| Time | Substrate | Conv. silane | Conv. substrate | Prod. yield | Ph2SiH2
| |
| 1 | 4 h | Allylbenzene | 97 | 96 | 84 | 4 |
| 2 | 4 h | Styrene | 31 | 17 | 7 (3:4) | 5 |
| 3 | 24 h | Styrene | 39 | 20 | 7 (3:4) | 7 |
| 4 | 4 h | Acetophenone | 92 | > 99 | > 99 | 4 |
All amounts are all given in percentage. Conversion is determined by GC (see Supporting Information).
Amount of SiH4 is considered equimolar to Ph2SiH2.
Markovnikov:anti‐Markovnikov product, ratio determined by NMR and GC.
Analysis of 1‐phenylethanol.
Figure 4Products of the chemoselectivity experiment. Acidic workup was applied before analysis.