| Literature DB >> 31243267 |
Lipeng Wu1,2, Vincent T Annibale1, Haijun Jiao3, Adam Brookfield4, David Collison4, Ian Manners5,6.
Abstract
Catalytic chemistry that involves the activation and transformation of main group substrates is relatively undeveloEntities:
Year: 2019 PMID: 31243267 PMCID: PMC6594957 DOI: 10.1038/s41467-019-09832-4
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Developed catalysts for P–P and P–E bond formation. a Main group catalysts and conditions for the homodehydrocoupling of phosphines. b Heterodehydrocoupling of diphenylphosphine with thiophenol by in situ generated rhodium phosphido complexes. c Our current work using tBuOK as the catalyst for the homo- and heterodehydrocoupling of phosphines
Fig. 2tBuOK-catalysed dehydrocoupling of phosphines in the presence of HA. a The effect of selected HA in the homodehydrocoupling of Ph2PH. b Proposed reaction mechanism via 3a as key intermediate and SN2-type reaction to produce 2a, K+ ions are removed from the catalytic cycles for clarity. Proposed transition state structures TS1, and TS2, for attack of 3a by incoming 1a or tBuO. X-ray crystal structure of hydrophosphination product 3e with non-hydrogen atoms shown as 30% probability ellipsoids. c, Reaction generality using different phosphines: reactions were performed with 0.1 mmol phosphines, 0.01 mmol tBuOK, 0.1 mmol HA-5, 0.5 mL THF in a J. Young NMR tube and yields were based on the phosphine as the limiting reagent and determined by 31P{1H} NMR spectroscopy using a capillary of PCl3 as a calibration standard, the numbers in brackets were isolated yields of products. a60 °C, b100 °C, c130 °C. X-ray crystal structure of 2j with non-hydrogen atoms shown as 30% probability ellipsoids
Fig. 3Dehydrocoupling of 1a in presence of azobenzene (HA-2). a Homodehydrocoupling of 1a catalysed by tBuOM (M = K, Na, Li), K[PPh2] (1a), or K[PhNNPh] at 25 °C. b X-band EPR spectrum of K[PhNNPh] in THF/2-Me-THF (20:1) generated in the 1:1 stoichiometric reaction of HA-2 with tBuOK. c Proposed radical chain mechanism for dehydrocoupling of 1a to 2a mediated by in situ generated radical anion K[PhNNPh]
Fig. 4Reaction generality for the dehydrocoupling of different phosphines with HA-2: reactions were performed with 0.1 mmol phosphines, 0.01 mmol tBuOK, 0.1 mmol HA-2, 0.5 mL THF in a J. Young NMR tube and yields were based on the phosphine as the limiting reagent and determined by 31P{1H} NMR spectroscopy using a capillary of PCl3 as a calibration standard, the numbers in brackets were isolated yields. a25 °C within 5 min, b−20 °C within 5 min, c130 °C for 1 h
Fig. 5Heterodehydrocoupling of phosphines. a 31P{1H} NMR spectra of tBuOK-catalysed heterodehydrocoupling of 1a with tBuOH in THF. b Reaction generality of catalytic heterodehydrocoupling of phosphines with alcohol, amine and thiol: reactions were performed with 0.1 mmol phosphines, 0.1–0.3 mmol of R3E-Hn; E = N, O, S, n = 1, 2 and 0.01 mmol tBuOK, 0.1 mmol HA-5 or HA-2, 0.5 mL THF in a J. Young NMR tube and yields were based on the phosphine as the limiting reagent and were determined by 31P{1H} NMR spectroscopy using a capillary of PCl3 as a calibration standard, the numbers in brackets were isolated yields. a25 °C, b130 °C
Fig. 6Catalytic homodehydrocoupling of phosphines using hydrazobenzene as HA. a 31P{1H} NMR spectra in THF with different amounts of added tBuOK for the dehydrocoupling of 1a in the presence of hydrazobenzene. b Catalytic results with different substituted phosphines: reactions were performed with 0.1 mmol phosphines, 0.1 mmol tBuOK and 0.1 mmol hydrazobenzene, 0.5 mL THF at 25 °C in a J. Young NMR tube and yields were based on the phosphine as the limiting reagent and determined by 31P{1H} NMR spectroscopy using a capillary of PCl3 as a calibration standard, the number in brackets shows an isolated yield
Fig. 7Hydrazobenzene-mediated heterodehydrocoupling of phosphines with alcohols, thiols, and amines: reactions were performed with 0.1 mmol phosphines, 0.1–0.2 mmol tBuOK and 0.1–0.2 mmol hydrazobenzene in 0.5 mL THF at 25 °C for 8 h in a J. Young NMR tube and yields were based on the phosphine as the limiting reagent and were determined by 31P{1H} NMR spectroscopy using a capillary of PCl3 as a calibration standard, the number in brackets shows an isolated yield