Production of anilines--key intermediates for the fine chemical, agrochemical, and pharmaceutical industries--relies on precious metal catalysts that selectively hydrogenate aryl nitro groups in the presence of other easily reducible functionalities. Herein, we report convenient and stable iron oxide (Fe2O3)-based catalysts as a more earth-abundant alternative for this transformation. Pyrolysis of iron-phenanthroline complexes on carbon furnishes a unique structure in which the active Fe2O3 particles are surrounded by a nitrogen-doped carbon layer. Highly selective hydrogenation of numerous structurally diverse nitroarenes (more than 80 examples) proceeded in good to excellent yield under industrially viable conditions.
Molecularly well-defined homogeneous catalysts are known for a wide variety of chemical transformations. The effect of small changes in molecular structure can be studied in detail and used to optimize many processes. However, many industrial processes require heterogeneous catalysts because of their stability, ease of separation and recyclability, but these are more difficult to control on a molecular level. Here, we describe the conversion of homogeneous cobalt complexes into heterogeneous cobalt oxide catalysts via immobilization and pyrolysis on activated carbon. The catalysts thus produced are useful for the industrially important reduction of nitroarenes to anilines. The ligand indirectly controls the selectivity and activity of the recyclable catalyst and catalyst optimization can be performed at the level of the solution-phase precursor before conversion into the active heterogeneous catalyst.
The development of base metal catalysts for the synthesis of pharmaceutically relevant compounds remains an important goal of chemical research. Here, we report that cobalt nanoparticles encapsulated by a graphitic shell are broadly effective reductive amination catalysts. Their convenient and practical preparation entailed template assembly of cobalt-diamine-dicarboxylic acid metal organic frameworks on carbon and subsequent pyrolysis under inert atmosphere. The resulting stable and reusable catalysts were active for synthesis of primary, secondary, tertiary, and -methylamines (more than 140 examples). The reaction couples easily accessible carbonyl compounds (aldehydes and ketones) with ammonia, amines, or nitro compounds, and molecular hydrogen under industrially viable and scalable conditions, offering cost-effective access to numerous amines, amino acid derivatives, and more complex drug targets.
Novel cobalt-based heterogeneous catalysts have been developed for the direct oxidative esterification of alcohols using molecular oxygen as benign oxidant. Pyrolysis of nitrogen-ligated cobalt(II) acetate supported on commercial carbon transforms typical homogeneous complexes to highly active and selective heterogeneous Co3O4-N@C materials. By applying these catalysts in the presence of oxygen, the cross and self-esterification of alcohols to esters proceeds in good to excellent yields.
Earth-abundant
transition metal (Fe, Co, or Ni) and nitrogen-doped
porous carbon electrocatalysts (M-N-C, where M denotes the metal)
were synthesized from cheap precursors via silica-templated pyrolysis.
The effect of the material composition and structure (i.e., porosity,
nitrogen doping, metal identity, and oxygen functionalization) on
the activity for the electrochemical CO2 reduction reaction
(CO2RR) was investigated. The metal-free N-C exhibits a
high selectivity but low activity for CO2RR. Incorporation
of the Fe and Ni, but not Co, sites in the N-C material is able to
significantly enhance the activity. The general selectivity order
for CO2-to-CO conversion in water is found to be Ni >
Fe
≫ Co with respect to the metal in M-N-C, while the activity
follows Ni, Fe ≫ Co. Notably, the Ni-doped carbon exhibits
a high selectivity with a faradaic efficiency of 93% for CO production.
Tafel analysis shows a change of the rate-determining step as the
metal overtakes the role of the nitrogen as the most active site.
Recording the X-ray photoelectron spectra and extended X-ray absorption
fine structure demonstrates that the metals are atomically dispersed
in the carbon matrix, most likely coordinated to four nitrogen atoms
and with carbon atoms serving as a second coordination shell. Presumably,
the carbon atoms in the second coordination shell of the metal sites
in M-N-C significantly affect the CO2RR activity because
the opposite reactivity order is found for carbon supported metal
meso-tetraphenylporphyrin complexes. From a better understanding of
the relationship between the CO2RR activity and the material
structure, it becomes possible to rationally design high-performance
porous carbon electrocatalysts involving earth-abundant metals for
CO2 valorization.
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