| Literature DB >> 31462632 |
Hua Liu1, Yi-Ling Zhu1, Zhi Li2.
Abstract
Triacylglycerides are naturally abundant and renewable feedstock for biofuels and chemicals. In this report, these seemingly stable compounds are shown to be reactive toward a variety ofEntities:
Year: 2019 PMID: 31462632 PMCID: PMC6713792 DOI: 10.1038/s41467-019-11864-9
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Substitution at C(sp3)–O bonds of esters. a Classical SN2 substitution reactions at the alkyl C–O bond of an ester; b Examples of reactions involving acyloxonium intermediates; c Catalytic hydrogenolysis of triacylglycerides; d Catalytic substitution of polyol esters with sulfonamides. R, R1, R2, R’, dash bonds: substituents; Nu, nucleophile; M, metal
Reaction Conditions Optimization for Polyol Esters and Nucleophilesa
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|---|---|---|---|---|---|---|
| Polyol ester, 1 | Nucleophile, 2 | Catalyst | mol % | Temp /°C | Yield /% | |
| 1 | Glycol diacetate ( | TsNHMe ( | Hf(OTf)4 | 2 | 120 | 90 |
| 2 | Glycol dipropionoate ( | TsNHMe ( | Hf(OTf)4 | 2 | 120 | 83 |
| 3 | Glycol diisobutyrate ( | TsNHMe ( | Hf(OTf)4 | 2 | 120 | 84 |
| 4 | Glycol dipivalate ( | TsNHMe ( | Hf(OTf)4 | 2 | 120 | 83 |
| 5 | Triacetin ( | TsNHMe ( | Hf(OTf)4 | 5 | 120 | 42 |
| 6 | Tributyrin ( | TsNHMe ( | Hf(OTf)4 | 5 | 120 | 48 |
| 7b | Glycol diacetate ( | TsNH2 ( | Hf(OTf)4 | 2 | 120 | 85 |
| 8 | Glycol diacetate ( | AcNHMe ( | Hf(OTf)4 | 2 | 120 | 0 |
| 9 | Glycol diacetate ( | BocNHMe ( | Hf(OTf)4 | 2 | 120 | 0 |
| 10 | Glycol diacetate ( | Phthalimide ( | Hf(OTf)4 | 2 | 120 | 0 |
| 11 | Glycol diacetate ( | CH3SO2NHMe ( | Hf(OTf)4 | 2 | 120 | 92 |
| 12 | Glycol diacetate ( | PhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 94 |
| 13 | Glycol diacetate ( | 4-BrPhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 95 |
| 14 | Glycol diacetate ( | 4-CF3PhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 98 |
| 15 | Glycol diacetate ( | 4-MeOPhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 91 |
| 16 | Glycol diacetate ( | 4-NO2PhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 0 |
| 17 | Glycol diacetate ( | 4-AcNHPhSO2NHMe ( | Hf(OTf)4 | 2 | 120 | 0 |
| 18 | Glycol diacetate ( | Saccharin ( | Hf(OTf)4 | 2 | 120 | 98 |
| 19c | Tributyrin ( | Saccharin ( | Hf(OTf)4 | 2 | 120 | 60 |
| 20c | Tributyrin ( | Saccharin ( | Hf(OTf)4 | 5 | 120 | 66 |
| 21c | Tributyrin ( | Saccharin ( | Yb(OTf)3 | 5 | 120 | 40 |
| 22c | Tributyrin ( | Saccharin ( | Al(OTf)3 | 5 | 120 | 45 |
| 23c | Tributyrin ( | Saccharin ( | Sc(OTf)3 | 5 | 120 | 76 |
| 24c | Tributyrin ( | Saccharin ( | Sc(OTf)3 | 5 | 150 | 85 |
| 25c,d | Tributyrin ( | Saccharin ( | Sc(OTf)3 | 2 | 150 | 90 |
| 26c,e | Tributyrin ( | Saccharin ( | Sc(OTf)3 | 2 | 150 | 66 |
| 27c,f | Tributyrin ( | Saccharin ( | Sc(OTf)3 | 2 | 150 | 65 |
Tf trifluoromethanesulfonyl, Ts 4-methylbenzenesulfonyl, Ac acetyl, Boc t-butyloxycarbonyl, neat without solvent
a1 (1.0 mmol), 2 (0.5 mmol) and catalyst were stirred at 120 °C for 24 h; Yields are isolated unless otherwise noted
bReaction time: 14 h. N,N-dialkylated product 10% obtained
cNMR yield
d85% isolated yield, along with 3% double substitution
e1:1 of tributyrin and saccharin, product contains 14% double substitution product
f1:2 of tributyrin and saccharin, product contains 25% double substitution product
Fig. 2Scope of polyol esters mono-amidation with saccharin. Reaction conditions: 1 (1.0 mmol), 2m (0.5 mmol) and Sc(OTf)3 (2 mol %) was stirred at 150 °C for 24 h unless otherwise noted; isolated yields; a48 h; b5 mol % of Sc(OTf)3; c180 °C; d2.0 mmol of 1 was used; estarting material is mono-amidation product; fmixture of stereoisomers; g5 mol % of Hf(OTf)4 was used, and a drying tube filled with K2CO3 and Na2SO4 was equipped to assimilate AcOH during reaction. Wavy bonds = undefined stereochemical configuration
Fig. 3Proposed mechanism and experimental evidence. a Proposed mechanism of mono-amidation of diol diesters; b Results of neighboring group participation experiments; c Stoichiometric ring-opening of acyloxonium salt with saccharin; d pathways of stereocenters scrambling through acyloxonium intermediates. LA , Lewis acid; rt , room temperature
Fig. 4Scope of amide esters mono-amidation with saccharin. Reaction conditions: 4 (0.6 mmol), 2m (0.5 mmol) and Hf(OTf)4 (1.0 mol %) was stirred at 150 °C for 24 h unless otherwise noted; isolated yields; a1.0 mmol (2.0 equiv) of 4h was used. Product mixture contains 18% double substitution product
Fig. 5Depolymerization of PET. a General one-pot reaction sequence of Lewis acid-catalyzed depolymerization of PET with saccharin. Recovered yields of terephthalic acid 6 and byproduct 9 were shown for reactions run at 1 mmol scale and 2 g (10 mmol) scale. b Analysis of solids precipitated out from the intermediate reaction mixture. aq, aqueous solution