| Literature DB >> 35458732 |
Atheer Al Khudhair1,2, Karim Bouchmella1, Pierre Hubert Mutin1, Vasile Hulea1, Olinda Gimello1, Ahmad Mehdi1.
Abstract
The development of green and sustainable materials for use as heterogeneous catalysts is a growing area of research in chemistry. In this paper, mesoporous SiO2-Al2O3 mixed oxide catalysts with different Si/Al ratios were prepared via hydrolytic (HSG) and nonhydrolytic sol-gel (NHSG) processes. The HSG route was explored in acidic and basic media, while NHSG was investigated in the presence of diisopropylether as an oxygen donor. The obtained materials were characterized using EDX, N2-physisorption, powder XRD, 29Si, 27Al MAS-NMR, and NH3-TPD. This approach offered good control of composition and the Si/Al ratio was found to influence both the texture and the acidity of the mesoporous materials. According to 27Al and 29Si MAS NMR analyses, silicon and aluminum were more regularly distributed in NHSG samples that were also more acidic. Silica-alumina catalysts prepared via NHSG were more active in esterification of acetic acid with n-BuOH.Entities:
Keywords: catalysis; silica–alumina; sol-gel
Mesh:
Substances:
Year: 2022 PMID: 35458732 PMCID: PMC9029862 DOI: 10.3390/molecules27082534
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structures of Brönsted acid sites on the surface of an amorphous silica–alumina, determined by theoretical calculations: (a) Si-(OH)-Al bridging, (b) silanol-O-Al [11].
Expected and experimental compositions of SixAly samples prepared via HSG in acidic and basic media and via NHSG.
| Samples | Expected and (Experimental) Compositions | Sol-Gel Route | ||
|---|---|---|---|---|
| SiO2 | Al2O3 | Si/Al 1 | ||
| Si100Al0 | 100 (99.6) | 0.0 (0.1) 2 | ∞ (250) | acidic HSG |
| Si100Al0 | 100 (99.3) | 0.0 (0.1) 2 | ∞ (330) | basic HSG |
| Si100Al0 | 100 (99.8) | 0.0 (0.2) 3 | ∞ (500) | NHSG |
| Si75Al25 | 74.7 (74.9) | 25.3 (25.1) | 2.9 (3.0) | acidic HSG |
| Si75Al25 | 74.6 (82.2) | 25.4 (17.8) | 2.9 (2.9) | basic HSG |
| Si75Al25 | 71.8 (69.5) | 28.2 (30.5) | 2.5 (2.5) | NHSG |
| Si50Al50 | 50.6 (47.5) | 49.4 (52.5) | 1.0 (0.9) | acidic HSG |
| Si50Al50 | 49.4 (53.4) | 50.6 (46.6) | 1.0 (1.1) | basic HSG |
| Si50Al50 | 51.4 (44.4) | 48.6 (55.6) | 1.0 (0.8) | NHSG |
| Si25Al75 | 24.7 (28.8) | 75.3 (71.2) | 0.3 (0.4) | acidic HSG |
| Si25Al75 | 24.6 (29.1) | 75.4 (70.9) | 0.3 (0.4) | basic HSG |
| Si25Al75 | 22.1 (24.1) | 77.9 (75.9) | 0.3 (0.3) | NHSG |
| Si0Al100 | 0.0 (0.1) 2 | 100 (99.7) | 0.0 (0.0) | acidic HSG |
| Si0Al100 | 0.0 (0.1) 2 | 100 (99.7) | 0.0 (0.0) | basic HSG |
| Si0Al100 | 0.0 (0.1) 2 | 100 (99.9) | 0.0 (0.0) | NHSG |
1 Experimental atomic Si/Al ratio (EDX). 2 Possible contamination during synthesis steps. 3 AlCl3 (0.015 mmol) was used as catalyst.
Texture of SiO2-Al2O3 samples measured by N2 physisorption.
| Sample | SBET (m2/g) | Vp (cm3/g) | Dp (nm) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Acidic HSG | Basic HSG | NHSG | Acidic HSG | Basic HSG | NHSG | Acidic HSG | BASIC HSG | NHSG | |
| Si100Al0 | 377 | 477 | 595 | 0.2 | 1.0 | 1.9 | 1.9 | 8.7 | 13.8 |
| Si75Al25 | 237 | 547 | 335 | 0.1 | 1.1 | 0.6 | 1.8 | 8.0 | 6.8 |
| Si50Al50 | 311 | 448 | 312 | 0.4 | 1.2 | 0.6 | 5.4 | 11 | 8.4 |
| Si25Al75 | 513 | 482 | 200 | 1.4 | 0.9 | 0.3 | 11 | 7.7 | 6.8 |
| Si0Al100 | 375 | 340 | 197 | 0.4 | 0.4 | 0.2 | 4.8 | 4.0 | 5.0 |
Figure 229Si CP-MAS NMR spectra of SixAly samples.
Figure 327Al CP_MAS NMR spectra of SixAly samples.
Figure 4Powder XRD patterns of SixAly samples created using (A) acidic HSG, (B) basic HSG, and (C) NHSG processes.
Figure 5Total desorbed NH3 as a function of the Al2O3 weight loading (colored bars). The relative amounts of weak and medium–strong sites were estimated (striped bars).
Scheme 1Experimental conditions of the batch esterification reaction.
Figure 6Ester yield as a function of the Al2O3 weight loading obtained using (A) 100 mg of SixAly catalyst and (B) 20 mol% of Al (compared to acetic acid) of SixAly catalyst.