Synthesis evidence

Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO

Huang L., Shi Y., Xiong W. et al. · Journal of Materials Science · 2021 · 9914-9928

1 structured synthesis route

Completeness describes how fully the route could be reconstructed from the main article and supporting information.

Partial recipeSource: Main

Route 1: Solvothermal

9916 · Catalyst synthesis

Metal precursorsStoichiometric amounts of NiCl2.6H2O and FeCl3.6H2O; Fe/Ni varied for x = 0, 0.14, 0.20, 0.33, 0.50, 1
Linker precursors1,3,5-benzenetricarboxylic acid (H3BTC), same molar ratio as total metal cations
Solvents40 mL N,N-dimethylformamide (DMF); anhydrous ethanol for purification
AtmosphereNot specified for solvothermal step; vacuum during final drying
Temperature150; activation/drying 80
Time24; activation/drying 24
Work-upCool to room temperature; collect pale green products; purify three times with anhydrous ethanol solutions.
ActivationKeep light green precipitate for 24 h at 80 C under vacuum conditions.
Show 5 structured reagent records
RoleReagentAmount / concentrationSource
Metal SourceNiCl2.6H2Ostoichiometric amounts varied by x9916 · Catalyst synthesis
Metal SourceFeCl3.6H2Ostoichiometric amounts varied by x9916 · Catalyst synthesis
Linker1,3,5-benzene tricarboxylic acid (H3BTC)same molar ratio as total metal cations9916 · Catalyst synthesis
SolventN,N-dimethylformamide (DMF)40 mL9916 · Catalyst synthesis
Solventanhydric ethanol solutionsused three times for purification9916 · Catalyst synthesis