Patent
US 10,737,2403-aminopropyltriethoxysilane
N,N-dimethylformamide
DMF
copper nitrate
Cu(NO₃)2
trimesic acid
Figure 2 is an SEM image o f ruthenium/graphene aerogel (Ru/GA).
Figure 3 is a TEM image of 3D ruthenium/graphene aerogel composite loaded with metal-organic f ramewor k s (MOF) (Ru/GA- -[K).
Figure 4 is an SEM image of 3D ruthenium/graphene aerogel composite loaded with m etal-organic fra m eworks (MOF) (Ru/GA-HK).
Figure 7 shows durability of Ru/G A-HK pretreated at 150 °C.
durability of Ru/GA- HK- 150 for CO oxidation. It could be seen f o rm the figure that the activity of the catalyst could be maintained for 4 8 h without any noticeable decrease. The performance is conducive to the practical application of the present invention
| — |
Duration | 15–20 minutes | — |
Duration | 20–30 minutes | — |
Temperature | 170–200 °C | — |
Duration | 3–5 hours | — |
Duration | 8–10 hours | — |
Duration | 18–36 hours | — |
Temperature | 100–200 °C | — |
3-aminopropyltriethoxysilane
N,N-dimethylformamide
DMF
copper nitrate
Cu(NO₃)2
trimesic acid
Figure 2 is an SEM image o f ruthenium/graphene aerogel (Ru/GA).
Figure 3 is a TEM image of 3D ruthenium/graphene aerogel composite loaded with metal-organic f ramewor k s (MOF) (Ru/GA- -[K).
Figure 4 is an SEM image of 3D ruthenium/graphene aerogel composite loaded with m etal-organic fra m eworks (MOF) (Ru/GA-HK).
Figure 7 shows durability of Ru/G A-HK pretreated at 150 °C.
durability of Ru/GA- HK- 150 for CO oxidation. It could be seen f o rm the figure that the activity of the catalyst could be maintained for 4 8 h without any noticeable decrease. The performance is conducive to the practical application of the present invention
| — |
Duration | 15–20 minutes | — |
Duration | 20–30 minutes | — |
Temperature | 170–200 °C | — |
Duration | 3–5 hours | — |
Duration | 8–10 hours | — |
Duration | 18–36 hours | — |
Temperature | 100–200 °C | — |
3-aminopropyltriethoxysilane
N,N-dimethylformamide
DMF
copper nitrate
Cu(NO₃)2
trimesic acid
Figure 2 is an SEM image o f ruthenium/graphene aerogel (Ru/GA).
Figure 3 is a TEM image of 3D ruthenium/graphene aerogel composite loaded with metal-organic f ramewor k s (MOF) (Ru/GA- -[K).
Figure 4 is an SEM image of 3D ruthenium/graphene aerogel composite loaded with m etal-organic fra m eworks (MOF) (Ru/GA-HK).
Figure 7 shows durability of Ru/G A-HK pretreated at 150 °C.
durability of Ru/GA- HK- 150 for CO oxidation. It could be seen f o rm the figure that the activity of the catalyst could be maintained for 4 8 h without any noticeable decrease. The performance is conducive to the practical application of the present invention
| — |
Duration | 15–20 minutes | — |
Duration | 20–30 minutes | — |
Temperature | 170–200 °C | — |
Duration | 3–5 hours | — |
Duration | 8–10 hours | — |
Duration | 18–36 hours | — |
Temperature | 100–200 °C | — |
3-aminopropyltriethoxysilane
N,N-dimethylformamide
DMF
copper nitrate
Cu(NO₃)2
trimesic acid
Figure 2 is an SEM image o f ruthenium/graphene aerogel (Ru/GA).
Figure 3 is a TEM image of 3D ruthenium/graphene aerogel composite loaded with metal-organic f ramewor k s (MOF) (Ru/GA- -[K).
Figure 4 is an SEM image of 3D ruthenium/graphene aerogel composite loaded with m etal-organic fra m eworks (MOF) (Ru/GA-HK).
Figure 7 shows durability of Ru/G A-HK pretreated at 150 °C.
durability of Ru/GA- HK- 150 for CO oxidation. It could be seen f o rm the figure that the activity of the catalyst could be maintained for 4 8 h without any noticeable decrease. The performance is conducive to the practical application of the present invention
| — |
Duration | 15–20 minutes | — |
Duration | 20–30 minutes | — |
Temperature | 170–200 °C | — |
Duration | 3–5 hours | — |
Duration | 8–10 hours | — |
Duration | 18–36 hours | — |
Temperature | 100–200 °C | — |