| Literature DB >> 35480811 |
Reva Edra Nugraha1,2, Didik Prasetyoko1, Hasliza Bahruji3, Suprapto Suprapto1, Nurul Asikin-Mijan4, Titie Prapti Oetami5, Aishah Abdul Jalil6,7, Dai-Viet N Vo8,9, Yun Hin Taufiq-Yap10,11.
Abstract
The activity of mesoporous Al-MCM-41 for deoxygenation of Reutealis trisperma oil (RTO) was enhanced via modification with NiO nanoparticles. Deoxygenation at atmospheric pressure and under H2 free conditions required acid catalysts to ensure the removal of the oxygenated fragments in triglycerides to form liquid hydrocarbons. NiO at different weight loadings was impregnated onto Al-MCM-41 and the changes of Lewis/Brønsted acidity and mesoporosity of the catalysts were investigated. The activity of Al-MCM-41 was enhanced when impregnated with NiO due to the increase of Lewis acidity originating from NiO nanoparticles and the mesoporosity of Al-MCM-41. Increasing the NiO loading enhanced the Lewis acidity but not Brønsted acidity, leading to a higher conversion towards liquid hydrocarbon yield. Impregnation with 10% of NiO on Al-MCM-41 increased the conversion of RTO to hydrocarbons via the deoxygenation pathway and reduced the products from cracking reaction, consequently enhancing the green diesel (C11-C18) hydrocarbon products. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35480811 PMCID: PMC9034156 DOI: 10.1039/d1ra03145g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Reported studies on deoxygenation reaction via hydrodeoxygenation (HDO) or decarbonylation and decarboxylation (deCOx) on various biomass and catalysts
| Catalyst | Reactant | Catalyst amount (%) | Reaction conditions | Conversion (%) | Diesel selectivity (%) | Ref. |
|---|---|---|---|---|---|---|
| TiO2 | Triolein | 5 | H2, 380 °C, 8 h, semi-batch reactor | 76.0 | 60 |
|
| Al2O3–TiO2 | Triolein | 5 | Vacuum, 10 mbar, 380 °C, 1 h, semi-batch reactor | 76.86 | 79.38 |
|
| 5%NiO/Al-SBA | PFAD | 5 | N2, 350 °C, 2 h, semi-batch reactor | — | 91 |
|
| Ni–Co/SBA-15 | PFAD | 10 | N2, 350 °C, 3 h, semi-batch reactor | — | 88.1 |
|
| 1%Pd/P25-TiO2 | Beef fat oil | — | H2, 325 °C, 4 h dodecane as solvent, flow fixed-bed | 96.9 | 66.2 |
|
| Ni–Mg/MWCNT | Chicken fat oil | 3 | N2, 350 °C, 2 h, semi-batch reactor | — | 87 |
|
| Ni–Ag/AC | JCO | 5 | N2, 350 °C, 2 h, semi-batch reactor | — | 83 |
|
| Co/EAC | Macauba oil | 10 | H2, 350 °C, 2 h, dodecane as solvent, batch | 97.59 | 96.7 |
|
| 10%Ni/Al-MCM-41 | RTO | 3 | N2, 350 °C, 4 h, semi-batch reactor | 68.53 | 98.6 |
|
PFAD = palm fatty acid distillate.
JCO = Jatropha curcas oil.
RTO = Reutealis trisperma oil.
Physicochemical properties of Reutealis trisperma oil
| Oil properties | RTO |
|---|---|
| Density (g cm−3) | 0.93 |
| Viscosity at 40 °C (cSt) | 102.22 |
| Moisture content (wt%) | 0.0014 |
| Acid value (mg KOH per g) | 4.27 |
| FFA value (%) | 0.36 |
Fig. 1(a) Wide angle and (b) low angle XRD patterns of the catalysts.
Structural properties of Al-MCM-41 and 5, 10, 15 and 20% Ni/Al-MCM-41
| Ni (%) | Surface area (m2 g−1) | Pore volume (cc g−1) |
| Ni | NiO size | Number of acid sites (mmol g−1) | Lewis density | |||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
|
|
|
|
|
|
| Brønsted | Lewis | |||||
| 0 | 739 | 260 | 478 | 0.845 | 0.559 | 0.286 | 3.8 | — | — | 0.116 | 0.137 | 0.185 |
| 5 | 439 | 247 | 188 | 0.584 | 0.458 | 0.126 | 3.60 | 4.7 | 23 | 0.031 | 0.315 | 0.717 |
| 10 | 372 | 224 | 147 | 0.529 | 0.435 | 0.094 | 3.55 | 8.8 | 26 | 0.050 | 0.296 | 0.796 |
| 15 | 360 | 208 | 170 | 0.519 | 0.402 | 0.117 | 3.53 | 12.5 | 27 | 0.063 | 0.281 | 0.780 |
| 20 | 302 | 144 | 158 | 0.318 | 0.224 | 0.094 | 3.29 | 15.0 | 26 | 0.046 | 0.126 | 0.417 |
S BET (surface area) by BET method.
S micro and Vmicro by t-plot method.
SEM-EDX.
Calculated using the Scherrer equation based on the XRD diffraction pattern of (111) plane.
Lewis density = Lewis acid sites/SBET.
Fig. 2N2 adsorption–desorption isotherms (a) and pore size distributions by DFT method (b) of the catalysts.
Fig. 3Pyridine-FTIR analysis of the catalysts after desorption at 150 °C for Al-MCM-41 (a), 5–20% Ni/Al-MCM-41 (b–e).
Fig. 4FESEM-EDX analysis of the 5%Ni/Al-MCM-41 (a), 10%Ni/Al-MCM-41 (b), 15%Ni/Al-MCM-41 (c) and 20%Ni/Al-MCM-41 (d).
Fig. 5HR-TEM images of 10%Ni/Al-MCM-41.
Deoxygenation of RTO at 350 °C for 4 h under N2 flow using Al-MCM-41 catalysts at different NiO loading
| NiO (%) | Conversion (%) | Sel.liquid (%) | Sel.gas (%) | Sel.char (%) | Liquid yield (%) | DO (%) |
|---|---|---|---|---|---|---|
| 0 | 51.8 | 35.11 | 61.98 | 2.90 | 19.32 | 95.2 |
| 5 | 57.5 | 40.77 | 55.56 | 3.66 | 25.32 | 96.9 |
| 10 | 68.3 | 43.61 | 51.39 | 4.98 | 33.20 | 100.0 |
| 15 | 60.0 | 49.47 | 46.35 | 4.17 | 32.41 | 99.8 |
| 20 | 48.0 | 43.81 | 53.18 | 2.99 | 22.39 | 98.0 |
Fig. 6(a) Distribution of liquid products and (b) distribution of hydrocarbon from catalytic deoxygenation of RTO; gasoline (C8–10) and diesel (C11–18).
Composition of RTO as carbon feedstock and the biofuels obtained from deoxygenation using Al-MCM-41 and 10%Ni/Al-MCM-41 catalysts
| Carbon number | RTO | Al-MCM-41 | 10%Ni/Al-MCM-41 | |||
|---|---|---|---|---|---|---|
| C–C, % | C | C–C, % | C | C–C, % | C | |
| 8 | — | — | 0.30 | — | — | — |
| 9 | — | — | 1.03 | 0.52 | — | — |
| 10 | — | — | 1.80 | 0.89 | 0.80 | — |
| 11 | — | — | 2.46 | — | 1.30 | — |
| 12 | — | — | 3.25 | 2.22 | 1.66 | — |
| 13 | — | — | 5.56 | 1.00 | 2.89 | — |
| 14 | — | — | 4.52 | — | 4.20 | — |
| 15 | — | — | 8.83 | — | 14.36 | 0.58 |
| 16 | 40.35 | — | 0.47 | — | 3.96 | 0.84 |
| 17 | 3.39 | — | 2.19 | — | 28.69 | 2.01 |
| 18 | 11.84 | 44.42 | — | — | — | — |
| Total | 55.58 | 44.42 | 30.41 | 4.63 | 57.86 | 3.43 |
| Selectivity (%) | 86.77 | 13.23 | 94.40 | 5.60 | ||
Scheme 1Catalytic transformation of RTO to biofuels on Al-MCM-41 and Ni/Al-MCM-41 catalysts.
Fig. 7Conversion and liquid yield from deoxygenation of RTO after 4 reaction cycles (a), and distribution of liquid product (b). 10%Ni/Al-MCM-41 was used as the catalysts.
Fig. 8TG-DTG-DTA profile of (a) 10%Ni/Al-MCM-41 fresh, (b) 10%Ni/Al-MCM-41 spent and (c) Al-MCM-41 spent catalysts.
Fig. 9Low angle XRD pattern (a) and FTIR spectra (b) of fresh and spent 10%Ni/Al-MCM-41 catalyst.