| Literature DB >> 32110361 |
Ren-Yi Zhu1, Long Chen1, Xiao-Si Hu1, Feng Zhou1,2, Jian Zhou1,2,3.
Abstract
We report the highly enantioselective synthesis of P-chiral tertiary phosphine oxides featuring an ethynyl group via Cu(i)-catalyzed azide-alkyne cycloaddition. Newly developed chiral pyridinebisoxazolines (PYBOX) bearing a bulky C4 shielding group play an important role in achieving excellent enantioselectivity while suppressing side bis-triazoles formation in desymmetrizing prochiral diethynylphosphine oxides. Notably, by tuning the size of the C4 shielding group, it is possible to achieve excellent remote enantiofacial control in desymmetrizing phosphole oxide-diynes with the prochiral P-center farther from the ethynyl group by four covalent bonds. Time-dependent enantioselectivity is observed for these desymmetric CuAAC reactions, suggesting a synergic combination of a desymmetrization and a kinetic resolution, and our ligands prove to be better than unmodified PYBOX in both steps. This finding contributes to a highly enantioselective kinetic resolution of racemic ethynylphosphine oxides. The resulting chiral ethynylphosphine oxides are versatile P-chiral synthons, which can undergo a number of diversifying reactions to enrich structural diversity. This journal is © The Royal Society of Chemistry 2020.Entities:
Year: 2019 PMID: 32110361 PMCID: PMC7012078 DOI: 10.1039/c9sc04938j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Access to P-stereogenic compounds.
Condition optimization
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| Entry |
| Solvent | CuX |
| Yield of | ee of |
| 1 |
| Dione | CuCl | 2.0 : 1 | 33 | 8 |
| 2 |
| MeCN | CuCl | 6.8 : 1 | 63 | 83 |
| 3 |
| MeCN | CuCl | 5.1 : 1 | 51 | 84 |
| 4 |
| MeCN | CuCl | 10.4 : 1 | 71 | 90 |
| 5 |
| MeCN | CuCl | 6.4 : 1 | 60 | 84 |
| 6 |
| MeCN | CuCl | 12.0 : 1 | 79 | 91 |
| 7 |
| MeCN | CuCl | 13.9 : 1 | 80 | 93 |
| 8 |
| MeCN | CuCl | 11.4 : 1 | 77 | 91 |
| 9 |
| MeCN | CuCl | 9.3 : 1 | 74 | 89 |
| 10 |
| MeCN | CuBr | 13.9 : 1 | 80 | 95 |
Determined by 1H NMR.
NMR yield by using 1,3,5-trimethoxybenzene as the internal standard.
Determined by chiral HPLC analysis.
Reaction at 0 °C, 36 h.
Dione = 2,5-hexanedione.
Yield of the isolated product 3a.
Scheme 2Reaction profiles.
Scope of asymmetric CuAAC of 1 and 2
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| Entry |
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| Yield of | ee of |
| 1 |
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| 14 : 1 | 80 | 95 |
| 2 |
|
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| 18 : 1 | 81 | 94 |
| 3 |
|
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| 11 : 1 | 77 | 95 |
| 4 |
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| 12 : 1 | 72 | 92 |
| 5 |
|
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| 7 : 1 | 65 | 92 |
| 6 |
|
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| 4 : 1 | 60 | 83 |
| 7 |
|
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| 10 : 1 | 80 | 90 |
| 8 |
|
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| 3 : 1 | 51 | 75 |
| 9 |
|
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| 20 : 1 | 85 | 96 |
| 10 |
|
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| 20 : 1 | 83 | 95 |
| 11 |
|
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| 16 : 1 | 84 | 91 |
| 12 |
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| 14 : 1 | 77 | 90 |
| 13 |
|
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| 23 : 1 | 80 | 93 |
| 14 |
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| 13 : 1 | 72 | 91 |
| 15 |
|
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| 16 : 1 | 73 | 90 |
Determined by 1H NMR analysis.
Yield of the isolated products 3.
Determined by chiral HPLC analysis.
1 : 2 = 1.05 : 1.
1 : 2 = 1 : 1.05.
Kinetic resolution of 4
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| Entry |
| Recovery | ee |
|
| 1 |
| 42 | 96 | 21 |
| 2 |
| 47 | 91 | 29 |
| 3 |
| 43 | 85 | 12 |
| 4 |
| 42 | 94 | 18 |
| 5 |
| 48 | 99 | 116 |
| 6 |
| 44 | 94 | 23 |
| 7 |
| 43 | 90 | 16 |
| 8 |
| 44 | 95 | 25 |
| 9 |
| 45 | 97 | 36 |
| 10 |
| 42 | 93 | 17 |
| 11 |
| 44 | 92 | 20 |
The recovery of 4.
Determined by chiral HPLC analysis.
s = ln[(1 – C)(1 – ee)]/ln[(1 – C)(1 + ee)]; C refers to the conversion of (±)-4, [1-(recovery of 4)].
0.55 equiv. of 2a was used at –10 °C for 4 d.
Enantioselective CuAAC of 4 and 2
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Yield of the isolated products 5 based on the azide 2.
Determined by chiral HPLC analysis.
0.25 mmol (±)-4.
0.23 mmol (±)-4.
Enantioselective CuAAC of 6a
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| Entry |
| CuX |
|
| Yield of | ee of |
| 1 |
| CuCl | 1.0 : 1 | 1.9 : 1 | 45 | 88 |
| 2 |
| CuCl | 1.0 : 1 | 4.6 : 1 | 62 | 96 |
| 3 |
| CuCl | 1.0 : 1 | 3.5 : 1 | 57 | 93 |
| 4 |
| CuBr | 1.0 : 1 | 6.6/1 | 66 | 98 |
| 5 |
| CuBr | 1.2 : 1 | 12.0/1 | 81 | 98 |
Determined by 1H NMR analysis.
NMR yield using anisole as the internal standard.
Determined by chiral HPLC analysis.
CuAAC of phosphole oxide-diynes
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Yield of the isolated products 7.
Determined by chiral HPLC analysis.
Determined by the yield of the isolated products of 7/7′.
20 mol% of CuBr and 24 mol% of L.
Scheme 3The elaboration of P-chiral phosphine oxides 3a and 5a with a triazole substituent.
Scheme 4The synthesis of P-chiral monophosphine 16 and their application.
Scheme 5Diastereodivergent synthesis of P-chiral tertiary phosphine oxides sulfinamide 19.
Scheme 6The synthesis of digold Au(i) complex 21.
Scheme 7The Synthesis of 22–24 and their photophysical properties.
Fig. 1(a) CD spectra of (R)-7a (black line) and (S)-7a (red line) at 2 × 10–5 M (10 mm path length) in CH2Cl2 at 25 °C. (b) UV-vis spectra of (R)-7a in CH2Cl2 at 25 °C.