| Literature DB >> 30723208 |
Wei Gong1, Dandan Chu1, Hong Jiang1, Xu Chen1, Yong Cui1,2, Yan Liu3.
Abstract
The search for porous materials with strong Brønsted acid sites for challenging reactions has long been of significant interest, but it remains a formidable synthetic challenge. Here we demonstrate a cage extension strategy to construct chiral permanent porous hydrogen-bonded frameworks with strong Brønsted acid groups for heterogeneous asymmetric catalysis. We report the synthesis of two octahedral coordination cages using enantiopure 4,4',6,6'-tetra(benzoate) ligand of 1,1'-spirobiindane-7,7'-phosphoric acid and Ni4/Co4-p-tert-butylsulfonylcalix[4]arene clusters. Intercage hydrogen-bonds and hydrophobic interactions between tert-butyl groups direct the hierarchical assembly of the cages into a permanent porous material. The chiral phosphoric acid-containing frameworks can be high efficient and recyclable heterogeneous Brønsted acid catalysts for asymmetric [3+2] coupling of indoles with quinone monoimine and Friedel-Crafts alkylations of indole with aryl aldimines. The afforded enantioselectivities (up to 99.9% ee) surpass those of the homogeneous counterparts and compare favorably with those of the most enantioselective homogeneous phosphoric acid catalysts reported to date.Entities:
Year: 2019 PMID: 30723208 PMCID: PMC6363736 DOI: 10.1038/s41467-019-08416-6
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Assembly procedures. a Self-assembly of cages 1-Ni and 1-Co (only half of the HL3− ligand are shown in the cage for clarity). b The single-crystal structure of the octahedral cage in 1-Ni and c the space-filling model with an elliptical shape viewed along the short axis (sky-blue, Ni; green, P; yellow, S; gray, C; red, O). The cavities are highlighted by colored spheres
Fig. 4Recycle and confinement effect. a Recycling tests of the HOF 1-Ni catalyst in the [3+2] coupling reaction of 3-methyl indole with quinone monoamine. b Plots of the [3+2] coupling reaction of 3-methyl indole with quinone monoimine at different catalyst loadings (catalyst loadings of Me4L and 1-Ni* are 6 and 0.75 times of HOF 1-Ni, respectively)
Fig. 2Crystal structures. a Four hydrogen bonds formed between five adjacent cages. b A hydrophobic cavity formed by six TBSC moieties from six cages. c The 3D HOF structure showing octahedral cages interconnected by two types of newly generated cages. d Simplified 3D packing structure. The cavities are highlighted by colored spheres
Fig. 3PXRD and N2 adsorption/desoption spectra. a PXRD patterns of 1-Ni. b N2 adsorption (filled symbols) and desorption (open symbols) isotherms at 77 K
Asymmetric [3+2] coupling of 3-substituted indoles with quinone monoiminea
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|---|---|---|---|---|---|---|
| Entry | Cat. | R1 | R2 | R3 | Yield (%)b | ee (%)c |
| 1 | Me | H | H | 92 | 99.9 ( | |
| 2 | Me | Me | H | 90 | 95 ( | |
| 3 | Me | H | 5-Me | 92 | 94 ( | |
| 4 | Me | H | 6-F | 90 | 95 ( | |
| 5 | Me | H | 6-Me | 95 | 99.9 ( | |
| 6 | Me | H | 5-OMe | 86 | 91 ( | |
| 7 | Me | H | 5-Br | 83 | 92 ( | |
| 8d | Phenyl | H | H | 65 | 99.7 ( | |
| 9d | Benzyl | H | H | 37 | 94 ( | |
| 10d | PIMEe | H | H | 9 | n.d. | |
| 11 | Me | H | H | 94 | 99.9 ( | |
| 12 | Me | Me | H | 92 | 94 ( | |
| 13 | Me | H | 5-Me | 89 | 93 ( | |
| 14 | Me | H | 6-F | 88 | 93 ( | |
| 15 | PhCO2Hg | Me | H | H | n.d. | n.d. |
| 16 | Me | H | H | 94 (79) | 89 (78) ( | |
| 17 | Me | H | 5-Me | 90 (77) | 87 (78) ( | |
| 18 | Me | H | 6-F | 93 (76) | 89 (75) ( | |
| 19 | Me | H | 5-Br | 91 (72) | 87 (76) ( | |
| 20 | Phenyl | H | H | 70 (73) | 91 (80) ( | |
| 21 | Benzyl | H | H | 69 (72) | 90 (87) ( | |
| 22 | PIMEe | H | H | 56 (64) | n.d. (n.d.) | |
aReaction conditions: 3-substituted indole (0.10 mmol), quinone monoimine (0.15 mmol), and (S)-1-Ni (0.04 mol% catalyst based on indole) in CH3CN (1 mL), 0 °C, 14 h
bIsolated yield
cDetermined by HPLC
dReaction time: 48 h
ePIME = phthalimidoethyl (size: 6.5 × 15.2 Å2, Supplementary Figure 13)
fThe R enantiomer was produced using (R)-1-Ni as the catalyst
gCatalyzed by 0.24 mol% of benzoic acid
hCatalyzed by 0.03 mol% of the discrete cage 1-Ni* and 0.24 mol% of (S)-Me4L
Asymmetric Friedel-Crafts reaction of N-sulfonyl aldimines with indolea
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|---|---|---|---|---|
| Entry | Cat. | R | Yield (%)b | ee (%)c |
| 1 | ( | 4-H | 92 | 91 ( |
| 2 | 4-Br | 95 | 97 ( | |
| 3 | 4-F | 96 | 94 ( | |
| 4 | 4-Cl | 96 | 98 ( | |
| 5 | 4-CF3 | 93 | 99 ( | |
| 6 | 4-Me | 89 | 90 ( | |
| 7 | 2-NO2 | 99 | 97 ( | |
| 8 | 2-Me | 89 | 99.7 ( | |
| 9 | 3-Br | 92 | 99.6 ( | |
| 10 | ( | 4-H | 87 (93) | 88 (86) ( |
| 11 | 4-Br | 90 (95) | 95 (95) ( | |
| 12 | 4-Me | 80 (92) | 88 (86) ( | |
aReaction conditions: N-sulfonyl aldimine (0.1 mmol), indole (0.3 mmol), and (R)-1-Ni (0.04 mol% catalyst based on N-sulfonyl aldimine) in DCE (1 mL), 0 °C, 10 h
bIsolated yield
cDetermined by HPLC
dCatalyzed by 0.03 mol% of the discrete (R)-1-Ni and 0.24 mol% of (R)-Me4L