| Literature DB >> 31360413 |
Ou Zhuo1, Lijun Yang1, Fujie Gao1, Bolian Xu1, Qiang Wu1, Yining Fan1, Yu Zhang2, Yufei Jiang1, Runsheng Huang2, Xizhang Wang1, Zheng Hu1.
Abstract
Fischer-Tropsch synthesis of lower olefins (Entities:
Year: 2019 PMID: 31360413 PMCID: PMC6585598 DOI: 10.1039/c9sc01210a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1In situ mass spectroscopic examination of iron carbonyls and DFT simulation of its formation via the carbonylation of iron species. (a) Two typical particle growth mechanisms. (b) Signals of m/z using the bar scanning model for 10Fe/hCNC. Reaction conditions: 175 °C, 1.0 MPa CO flow of 10 mL min–1. (c) Signals of m/z = 56 using the trend scanning model. Catalysts: 10Fe/hCNC, 10Fe/hNCNC-1, 10Fe/hNCNC-2 and 10Fe/hNCNC-3. Reaction conditions: 0.10 and 1.0 MPa CO flow of 10 mL min–1. The inset shows an enlarged view of the dashed curves for pCO = 0.10 MPa in the marked region. (d) The free energy diagram for the formation of Fe(CO)5 on a single Fe atom at the pristine or N-doped graphitic plane. The supported Fe single atom without CO adsorption is selected as the referenced zero point. The optimized configurations are presented in Fig. S7.†
Fig. 2Influence of N content and Fe loading on the iron carbonyl-mediated particle growth. (a–d and a′–d′) Particle size histograms of fresh (a–d) and corresponding spent (a′–d′) catalysts with an Fe loading of ca. 10 wt% on the supports with a nitrogen content of 0, 3.0, 8.1 and 12.0 at%, respectively. (d–h and d′–h′) Particle size histograms of fresh (d–h) and corresponding spent (d′–h′) catalysts supported on hNCNC-3 with an Fe loading of 9.5, 20.1, 31.4, 36.8 and 41.5 wt%, respectively. Reaction conditions: 350 °C, 0.10 MPa, CO/H2 = 1, TOS = 60 h. Corresponding TEM images of the catalysts are presented in Fig. S3 and S4.†
FTO results over different catalysts
| Sample | N content (at%) | Fe loading (wt%) | CO conversion (%) | CO2 selectivity (%) | Hydrocarbon distribution (at% of C) | O/P | |||
| CH4 | C=2–C=4 | C02–C04 | C5+ | ||||||
| 10Fe/hCNC | 0 | 10 | 1.7 | 16.5 | 27.1 | 44.4 | 4.7 | 23.8 | 9.4 |
| 10Fe/hNCNC-1 | 3.0 | 10 | 2.3 | 21.2 | 26.1 | 46.6 | 4.1 | 23.2 | 11.4 |
| 10Fe/hNCNC-2 | 8.1 | 10 | 1.9 | 22.4 | 23.8 | 51.0 | 4.2 | 21.0 | 12.1 |
| 10Fe/hNCNC-3 | 12.0 | 10 | 1.5 | 28.3 | 25.7 | 52.1 | 4.6 | 17.5 | 11.3 |
| 20Fe/hNCNC-3 | 12.0 | 20 | 2.1 | 32.1 | 25.1 | 53.9 | 4.1 | 16.9 | 13.2 |
| 30Fe/hNCNC-3 | 12.0 | 30 | 2.8 | 34.9 | 24.9 | 53.6 | 3.6 | 17.8 | 14.9 |
| 35Fe/hNCNC-3 | 12.0 | 35 | 3.5 | 39.4 |
|
| 3.3 | 17.6 | 16.4 |
| 40Fe/hNCNC-3 | 12.0 | 40 | 3.2 | 38.7 | 24.7 | 50.8 | 3.0 | 21.4 | 16.9 |
Reaction conditions: 350 °C, 0.10 MPa, CO/H2 = 1, TOS = 60 h, gas hourly space velocity (GHSV) = 12 000 mL h–1 g–1.
O/P is the C=2–C=4/C02–C04 ratio. Note: according to the five times repeated measurements, the statistical standard deviation for CO conversions is less than ±0.1%.
Fig. 3Structural evolution and schematic diagram for the formation of core–shell FeC particles. (a–d) TEM images of the fresh 10Fe/hNCNC-3 (a) and the spent 10Fe/hNCNC-3 undergoing 5, 10 and 60 h FTO reaction (b–d), respectively. (e–h) Typical high-resolution TEM images of the spent catalyst. The lattice spacings can be assigned to χ-Fe5C2, Fe7C3 and θ-Fe3C, corresponding to JCPDS no.: 089-8968, 075-1499 and 089-7271. (i) Illustration of the formation process of core–shell FeC particles.
Fig. 4The influence of core–shell particles on the selectivity of FTO. (a) The product selectivity of the 35Fe/hNCNC-3 and 35Fe/hNCNC-3-HP catalysts containing the less and more core–shell particles, respectively. (b) Schematic illustration of the selectivity to lower olefins and methane for the catalysts containing fewer (left) and more (right) core–shell particles, respectively. (c) Selectivity evolution for the 35Fe/hNCNC-3 catalyst. The reaction conditions are listed in Table 1.