| Literature DB >> 34351083 |
Yanqiu Hu1, Mingqi Ren1, Milad Kazemnejadi2.
Abstract
A new recyclable basic ionic liquid was introduced as an efficient catalyst for aldol condensation and transesterification reactions under environmentally friendly conditions. The catalyst was prepared based on methyl imidazolium moieties bearing hydroxide counter anions via the Hofmann elimination on a 1,3,5-triazine framework. The ionic liquid with two functionalities including anion stabilizer and high basicity, was used as an efficient catalyst for aldol condensation as well as transesterification reaction of a variety of alkyl benzoates. All reactions were performed in the absence of any external reagent, co-catalyst, or solvent, in line with environmental protection. The kinetics isotope effect (KIE) was conducted for the transesterification reaction to elucidate the mechanism and rate determining step (RDS). It worth noted that, the homogeneous catalyst could be recycled from the reaction mixture and reused for several consecutive runs with insignificant drop of basicity and conversion.Entities:
Keywords: aldol condensation reactions; high basicity; ionic liquids; recyclability; transesterification reactions
Year: 2021 PMID: 34351083 PMCID: PMC8340073 DOI: 10.1002/open.202100091
Source DB: PubMed Journal: ChemistryOpen ISSN: 2191-1363 Impact factor: 2.630
Scheme 1Selective and green transformation of aldol condensation and transesterification reaction catalyzed by [TAIm]OH ionic liquid.
Scheme 2Preparation of imidazolium hydroxide‐triazine ([TAIm]OH) as a strong basic ionic liquid.
Physical properties of [TAIm]OH ionic liquid
|
Physical properties |
Mw [g.mol−1] |
Color/appearance |
Density [g.cm−3] |
Viscosity [cP] |
|---|---|---|---|---|
|
Value |
375.4 |
Yellow oil |
1.52[a] |
1194 |
[a] Based on apparatus. 1.55 g.cm−3 from the acid titration assay.
Scheme 3A mechanistic view for Hofmann elimination during the preparation of [TAIm]OH ionic liquid.
Investigations on effective parameters for the aldol condensation of benzaldehyde with cyclopentanone catalyzed by [TAIm]OH ionic liquid[a]
|
| |||||
|---|---|---|---|---|---|
|
Entry |
Ionic liquid: ketone: aldehyde ratio (mmol)[b,c] |
T [°C] |
pH |
Time [h] |
Conversion [%][d] |
|
1 |
2.5: 10: 1 |
25 |
13.86 |
2.0 |
90 |
|
2 |
2.5: 14: 1 |
25 |
13.80 |
3.5 |
80 |
|
3[e] |
2.0: 12: 1 |
25 |
13.75 |
3.0 |
90 |
|
4 |
2.5: 12: 1 |
25[f] |
13.84 |
2.0 |
96 |
|
5 |
3.0: 12: 1 |
25 |
13.92 |
2.0 |
96 |
|
6 |
2.5: 12: 1 |
50 |
13.84 |
2.5 |
90 |
Investigations on effective parameters for the transesterification reaction of n‐butyl benzoate with methanol catalyzed by [TAIm]OH ionic liquid[a]
|
| |||||
|---|---|---|---|---|---|
|
Entry |
Ionic liquid: butyl benzoate: MeOH (mmol)[b] |
T [°C] |
Time [h] |
pH |
Conversion [%][c] |
|
1 |
10: 5: 5 |
Reflux[d] |
7 |
13.68 |
70 |
|
2 |
10: 5: 20 |
Reflux[d] |
5 |
13.57 |
92 |
|
3 |
10: 5: 30 |
Reflux[d] |
5 |
13.52 |
80 |
|
4 |
20: 5: 10 |
Reflux[d] |
5 |
13.21 |
98 |
|
5 |
5: 5: 10 |
Reflux[d] |
5 |
13.40 |
75 |
|
6 |
10: 5 : 10 |
Reflux[d] |
5 |
13.36 |
98 |
|
7 |
10: 5: 10 |
40 |
10 |
13.37 |
60 |
|
8 |
10: 5: 10 |
R.T. |
10 |
13.36 |
20 |
[a] Reaction conditions: n‐butyl benzoate, MeOH, ionic liquid, temperature, sealed tube. [b] mmol of ionic liquid is based on mmol of hydroxide ions in the ionic liquid. [c] GC conversion. [d] 65 °C.
[TAIm]OH ionic liquid catalyzed aldol condensation reaction[a]
|
| |||||
|---|---|---|---|---|---|
|
Entry |
R |
Ketone |
Product |
Time (h) |
Conversion [%][b] |
|
1 |
H |
|
|
2 |
93 |
|
2 |
4‐MeO |
|
|
3.5 |
90 |
|
3 |
4‐NO2 |
|
|
1.2 |
96 |
|
4 |
4‐OH |
|
|
3 |
92 |
|
5 |
4‐Br |
|
|
2.5 |
95 |
|
6 |
H |
|
|
3 |
96 |
|
7 |
4‐MeO |
|
|
3 |
85 |
|
8 |
4‐NO2 |
|
|
2.5 |
95 |
|
9 |
4‐OH |
|
|
4 |
90 |
|
10 |
4‐Br |
|
|
4.5 |
92 |
[a] Reaction conditions: Aldehyde (1.0 mmol), ketone (12.0 mmol), ionic liquid (0.2 ml, 2.5 mmol OH group), room temperature, sealed tube. [b] GC analysis.
[TAIm]OH ionic liquid catalyzed transesterification reaction[a]
|
| |||||
|---|---|---|---|---|---|
|
Entry |
R1 |
R2 |
Product |
Time [h] |
Conversion [%][b] |
|
1 |
Et |
Me |
|
14 |
75 |
|
2 |
|
Me |
|
9 |
80 |
|
3 |
|
Me |
|
5 |
98 |
|
4 |
Me |
EtOH |
|
10 |
80 |
|
5 |
|
EtOH |
|
12 |
84 |
|
6 |
|
EtOH |
|
12 |
85 |
|
7 |
Me |
|
|
7 |
77 |
|
8 |
Et |
|
|
5 |
95 |
|
9 |
|
|
|
4 |
96 |
[a] Reaction conditions: Benzoate ester (5.0 mmol), alcohol (10 mmol), ionic liquid (1.0 ml, 10.0 mmol OH group), sealed tube. The all reactions were performed under boiling points of alcohols. [b] GC analysis.
Figure 1(a) 1H‐NMR (250 MHz) and (b) 13C‐NMR (62.9 MHz) spectra of 7 a in CDCl3.
Scheme 4The plausible reaction mechanisms for (a) aldol condensation and (b) transesterification reaction catalyzed by [TAIm]OH.
Scheme 5sotope effect study over the transesterification reaction of n‐butyl benzoate with Me18OH catalyzed by [TAIm]OH.
Figure 2(a) Comparison between the kinetics of transesterification of n‐butyl benzoate with Me18OH (purple curves) with normal MeOH (blue curves) catalyzed by [TAIm]OH. The slopes of the lines correspond to the rate constant.
Control experiments for aldol condensation and transesterification reactions catalyzed by various compounds
|
Entry |
Catalyst |
Time [h] |
Conversion [%][a] | ||
|---|---|---|---|---|---|
|
|
|
|
| ||
|
1 |
[TAIm]I[d] |
4 |
7 |
30 |
10 |
|
2 |
TCT |
2 |
5 |
– |
– |
|
3 |
NaOH(aq) 10 %wt |
2 |
5 |
3 |
– |
|
4 |
Ag2O |
2 |
5 |
– |
– |
|
5 |
– |
2 |
5 |
– |
– |
|
6 |
[bmim]OH[d] |
4 |
7 |
80 |
45 |
[a] GC analysis. [b] Reaction conditions: benzaldehyde (1.0 mmol), cyclopentanone (12.0 mmol), catalyst (2.5 mmol), room temperature, sealed tube. [c] Reaction conditions: n‐butyl benzoate (5.0 mmol), MeOH (10 mmol), catalyst (10.0 mmol), reflux, sealed tube. [d] 0.2 mL.
Figure 3Recycling studies of [TAIm]OH over the catalytic reaction of aldol condensation and transesterification.
Figure 4(a) 1H‐NMR and (b) 13C‐NMR spectra of the recovered [TAIm]OH after 5th over the preparation of 7 a.