| Literature DB >> 32518227 |
Xing-Wei Gu1, Yu-Li Sun1, Jia-Le Xie1, Xing-Ben Wang1, Zheng Xu1, Guan-Wu Yin1, Li Li1, Ke-Fang Yang1, Li-Wen Xu2,3.
Abstract
Hydrosilylation of unsaturatedEntities:
Year: 2020 PMID: 32518227 PMCID: PMC7283218 DOI: 10.1038/s41467-020-16716-5
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Chemo- and stereo-selective issues with hydrosilylation.
a Catalytic asymmetric hydrosilylation of terminal alkenes mediated by transition-metal catalysts. b Traditional methods for hydrosilylation of EWG-activated alkenes led to reduction and O-silylation. c Two classic pathways for transition-metal-catalysed hydrosilylation of alkenes, and its mechanistic analysis should encourage greater adoption of Si–C coupling methods for the hydrosilylation of internal alkenes. d The catalytic desymmetric hydrosilylation of N-arylmaleimides for remote control of axial chirality. CH is Chalk–Harrod mechanism, and mCH is modified Chalk–Harrod mechanism.
Optimisation of reaction conditionsa.
| Entry | Ligand | Conversion (%)b | 3a/4ab | ee% of 3ac | Entry | Ligand | Conversion (%)b | 3a/4ab | |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 97 | 25:75 | 70 | 14 | 14 | <1:99 | ND | ||
| 2 | 95 | 17:83 | 69 | 15 | >99 | <1:99 | ND | ||
| 3 | >99 | 30:70 | 68 | 16 | 28 | <1:99 | ND | ||
| 4 | >99 | 29:71 | 76 | 17 | 29 | <1:99 | ND | ||
| 5 | trace | ND | ND | 18 | >99 | <1:99 | ND | ||
| 6 | >99 | 8:92 | 62 | ||||||
| 7 | >99 | 59:41 | 79 | ||||||
| 8 | 93 | 50:50 | 79 | 19 | Dioxane | 99 | 67:32 | 92 | |
| 9 | >99 | 41:59 | 93 | 20e | Toluene | >99 | 93:7 | 96 | |
| 10 | 90 | 4.5:95.5 | 91 | 21 | Et2O | >99 | 33:67 | 92 | |
| 11 | >99 | 4:96 | 86 | 22 | DCE | >99 | 85:15 | 94 | |
| 12 | >99 | 68:32 | 94 | 23 | THF | >99 | 4:96 | 70 | |
| 13 | 95 | 4:96 | 31 | 24 | DCM | >99 | 96:4 | 93 | |
aAll the reactions were run on a 0.1 mmol scale in 1.0 mL DCE (entries 1–13) or toluene (entries 14-18) at 60 °C for 18 h.
bDetermined by 1H NMR using dibromomethane as an internal standard.
cDetermined by chiral HPLC.
dThe reactions were performed with Pd2(dba)3 and ligand L12.
eThe reaction temperature is 50 °C.
Fig. 2Enantioselective palladium-catalysed hydrosilylation of maleimides.
a The determination of chiral palladium catalyst after screening of a variety of chiral ligands and reaction parameters, and that corresponding to L12 is optimal. b The catalytic asymmetric hydrosilylation of maleimides is broadly applicable, affording silyl products with excellent enantioselectivities (up to 99% ee). Products containing S-heterocycle and unsubstituted imide can be accessed. c The effect of bulky groups at the ortho-position of N-arylmaleimides on enantioselective Si–C coupling hydrosilylation with respect to the remote control of axial chirality.
Fig. 3Remote control of axial chirality of C–N bond by hydrosilylation.
a The design of C–N bond rotatable atropisomers by introduction of two different substituents on the ortho-position of N-arylmaleimides to stabilise axial chirality. b The catalytic asymmetric hydrosilylation is broadly applicable in the construction of atropisomeric N-arylmaleimides with good chemo-, diastereo-, and enantioselectivity and in up to 97% yield. Products containing sp3 central chirality and axial chirality can be accessed in the single step of Si–C coupling hydrosilylation.
Fig. 4Gram-sale synthesis and functionalisation and demonstration of utility.
a Gram-scale reaction. Compared with the small-scale reaction, using substrates 1a and 2a in a gram-scale reaction produced the desired product 3a with the same level of enantiomeric excess (ee) and yield. b The silyl succinimides can be readily reduced to the stable silylpyrrolidine that could be transferred into structurally diverse and chiral N-heterocycles without racemisation. DMAD dimethyl acetylenedicarboxylate, PFNB petafluoronitrobenzene, CFL compact fluorescent light, ct the value of chirality transfer.