| Literature DB >> 35529960 |
Lingmei Yang1,2,3, Huiwen Li1,2,3, Jun Ying Fu1,2,3, Ming Li1,2,3, Changlin Miao1,2,3, Zhongming Wang1,2,3, Pengmei Lv1,2,3, Zhenhong Yuan1,2,3.
Abstract
In this article, a novel nano-rod-shaped SAPO-11 molecular sieve (SAPO-11-A-F) with a thickness of ca. 100 nm was successfully fabricated by the in situ seed-induced steam-assisted method using the cationic surfactant cetyltrimethylammonium bromide (CTAB) as a mesoporous template and a nonionic copolymer poly(ethylene oxide)-block-poly(propylene oxide)-block-poly(ethylene oxide), F127, as the crystal growth inhibitor. The fabricated nano-rod-shaped SAPO-11-A-F possessed nanocrystalline size, a hierarchical porous structure, and enhanced acidic sites. The added CTAB was mainly used to enhance the mesoporous structure and acid, and F127 acted as a grain growth inhibitor. According to the orientation growth mechanism of the molecular sieves, the crystallization mechanism of the nano-rod-shaped hierarchical porous molecular sieves with different crystallization times was investigated. It was found that the nano-rod-shaped molecular sieves were formed by the accumulation of nano-sheets. Compared to three nickel catalysts with different silicoaluminophosphate SAPO-11 molecular sieves in the hydroisomerization of oleic acid to iso-alkanes, the bifunctional catalyst of 7% Ni/SAPO-11-A-F had higher isomeric selectivity (79.8%); in particular, the isomeric octadecane showed stronger selectivity, indicating that the nano-rod-shaped SAPO-11 molecular sieve is more beneficial for the hydrodehydration reaction. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35529960 PMCID: PMC9073899 DOI: 10.1039/c9ra06117g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1The SEM and TEM images of SAPO-11-S (A), SAPO-11-A (B), SAPO-11-A-F (C and D); the elemental mapping of SAPO-11-A-F (E).
Fig. 2XRD patterns of the different SAPO-11 samples.
The results of the surface area, pore volume and relative crystallinity (RC) of the different SAPO-11 samples
| Catalysts |
|
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|
|
|
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|---|---|---|---|---|---|---|---|
| SAPO-11-S | 217.9 | 107.5 | 110.4 | 0.153 | 0.046 | 0.232 | 100 |
| SAPO-11-A | 283.9 | 133.2 | 150.8 | 0.203 | 0.057 | 0.260 | 98.1 |
| SAPO-11-F | 257.6 | 202.9 | 54.7 | 0.117 | 0.082 | 0.210 | 62.8 |
| SAPO-11-A-F | 249.3 | 123.7 | 125.6 | 0.172 | 0.051 | 0.241 | 85.3 |
Surface area calculated by the BET method.
Micropore volume and surface area calculated by the t-plot method.
Mesopore volume calculated by the BJH method.
Fig. 3(a) N2 adsorption–desorption and (b) pore size distributions of the different SAPO-11 samples: (a) SAPO-11-S, (b) SAPO-11-A, (c) SAPO-11-F and (d) SAPO-11-A-F.
Fig. 4IR spectra of pyridine adsorption for the different SAPO-11 samples at 200 °C.
Acidity properties of the SAPO-11 samples determined by Py-IR
| Sample | Amount (μmol g−1) and distribution of acid sites | |||||
|---|---|---|---|---|---|---|
| Total acid sites (200 °C) | Medium and strong acid sites (350 °C) | |||||
| B | L | B + L | B | L | B + L | |
| SAPO-11-S | 144 | 22 | 166 | 122 | 18 | 140 |
| SAPO-11-A | 175 | 100 | 275 | 140 | 31 | 171 |
| SAPO-11-F | 181 | 20 | 201 | 149 | 17 | 166 |
| SAPO-11-A-F | 188 | 110 | 298 | 153 | 41 | 194 |
Fig. 529Si MAS NMR spectra of the SAPO-11-S and SAPO-11-A-F species.
Deconvolution results of the 29Si MAS NMR spectra of SAPO-11-S and SAPO-11-A-F via the peak areas of the different Si species
| Sample | Si(4Al)% | Si(3Al)% | Si(2Al)% | Si(1Al)% | Si(4Si)% |
|---|---|---|---|---|---|
| SAPO-11-S | 6.1 | 26.4 | 20.7 | 29.6 | 16.9 |
| SAPO-11-A-F | 17.4 | 37.9 | 18.7 | 18.1 | 7.9 |
Fig. 627Al MAS NMR spectra of SAPO-11-S and SAPO-11-A-F.
Fig. 7XRD spectra of SAPO-11-A-F with different lengths of crystallization time (1, 3, 6, 8, 12 and 24 h).
Fig. 8SEM images of SAPO-11-A-F with different crystallization times.
Fig. 9Schematic of the proposed SAPO-11 crystal growth route by the SISAC method.
Fig. 10H2-TPR profiles of (a) 7Ni/SAPO-11-S and (b) 7Ni/SAPO-11-A-F.
Fig. 11The conversion and selectivity of the liquid product compositions and Ciso/C of oleic acid hydroisomerization over different 7Ni/SAPO-11 catalysts (reaction conditions: oleic acid (15 g), catalyst (0.7 g), T = 360 °C, t = 4.0 h, P = 4 MPa H2).