| Literature DB >> 28809280 |
Zofia Lendzion-Bielun1, Urszula Narkiewicz2, Walerian Arabczyk3.
Abstract
An effect of promoters such as calcium, aluminium, and potassium oxides and also addition of chromium and manganese on the structure of cobalt catalysts was examined. Studies of the catalytic ammonia decomposition over the cobalt catalysts are presented. The studies of the ammonia decomposition were carried out for various ammonia-hydrogen mixtures in which ammonia concentration varied in the range from 10% to 100%. Co(0) catalyst, promoted by oxides of aluminium, calcium, and potassium, showed the highest activity in the ammonia decomposition reaction. Contrary to expectations, it was found that chromium and manganese addition into the catalysts decreased their activity.Entities:
Keywords: activity; ammonia decomposition; cobalt catalyst
Year: 2013 PMID: 28809280 PMCID: PMC5458937 DOI: 10.3390/ma6062400
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Chemical composition and specific surface areas of the catalysts.
| catalyst | content [wt %] | dCo3O4 | So | S600 | |||||
|---|---|---|---|---|---|---|---|---|---|
| Al2O3 | CaO | K2O | Cr2O3 | MnO2 | Co3O4 | (nm) | (m2/g) | (m2/g) | |
| Co | – | – | – | – | – | 100 | 11 | 64 | 4 |
| Co(0) [ | 2.6 a/2.3 b | 1.5 a/1.7 b | 0.5 a | – | – | 95.4 | 23 | 29 | 13 |
| CoMn(0.25) [ | 2.8 a/2.6 b | 1.4 a/2.4 b | 0.6 a | – | 0.39 a | 94.8 | 20 | 37 | 14 |
| CoCr(0.16) | 2.9 a/2.7 b | 1.6 a/1.9 b | 0.5 a | 0.23 a | – | 94.8 | 34 | 33 | 14 |
| CoCr(0.28) | 2.5 a/2.3 b | 1.4 a/1.2 b | 0.5 a | 0.41 a/0.55 b | – | 95.2 | 30 | 39 | 17 |
a calculated on the basis of the results from the ICP-OES method; b calculated from the EDX method; So is specific surface area of the oxidised form of the catalyst; S600 is specific surface area of the catalyst after reduction and sintering in hydrogen at 600 °C.
Figure 1X-ray diffraction (XRD) patterns of the cobalt oxide and the cobalt catalyst.
Figure 2H2-TPR profiles of the cobalt catalysts (flow 10% H2/Ar, 10°/min from 100 to 700 °C).
Figure 3Dependence of the rate of the ammonia decomposition reaction on the logarithm of nitriding potential at the temperature of 500 °C.
NH3 conversion degree and H2 formation rate over cobalt catalysts (GHSVNH3 = 24,000 mL·h−1·gcat−1, at temperatures 500 and 550°C).
| catalyst | NH3 conversion degree (%) | H2 formation rate (mmol/min gcat) | |||
|---|---|---|---|---|---|
| 500 °C | 550 °C | 500 °C | 550 °C | ||
| Co | 4.5 | 26.2 | 1.2 | 5.5 | |
| Co(0) | 40.1 | 50.0 | 8.3 | 9.5 | |
| CoMn(0.25) | 23.0 | – | 6.2 | – | |
| CoCr(0.16) | 35.0 | 45.0 | 7.3 | 8.3 | |
| CoCr(0.28) | 32.0 | 41.0 | 6.8 | 7.7 | |
Figure 4Dependence of the ammonia conversion degree at 500 °C as a function of GHSV.