Advanced search×

High-temperature stable, iron-based core-shell catalysts for ammonia decomposition.

Chemistry 17(2):598-605 (2011) PMID 21058374

High-temperature, stable core-shell catalysts for ammonia decomposition have been synthesized. The highly active catalysts, which were found to be also excellent model systems for fundamental studies, are based on α-Fe(2)O(3) nanoparticles coated by porous silica shells. In a bottom-up approach, hematite nanoparticles were firstly obtained from the hydrothermal reaction of ferric chlorides, L-lysine, and water with adjustable average sizes of 35, 47, and 75 nm. Secondly, particles of each size could be coated by a porous silica shell by means of the base-catalyzed hydrolysis of tetraethylorthosilicate (TEOS) with cetyltetramethylammonium bromide (CTABr) as porogen. After calcination, TEM, high-resolution scanning electron microscopy (HR-SEM), energy-dispersive X-ray (EDX), XRD, and nitrogen sorption studies confirmed the successful encapsulation of hematite nanoparticles inside porous silica shells with a thickness of 20 nm, thereby leading to composites with surface areas of approximately 380 m(2)  g(-1) and iron contents between 10.5 and 12.2 wt %. The obtained catalysts were tested in ammonia decomposition. The influence of temperature, iron oxide core size, possible diffusion limitations, and dilution effects of the reagent gas stream with noble gases were studied. The catalysts are highly stable at 750 °C with a space velocity of 120,000 cm(3)  g(cat)(-1)  h(-1) and maintained conversions of around 80 % for the testing period time of 33 h. On the basis of the excellent stability under reaction conditions up to 800 °C, the system was investigated by in situ XRD, in which body-centered iron was determined, in addition to FeN(x), as the crystalline phase under reaction conditions above 650 °C.

DOI: 10.1002/chem.201001827
Version: za2963e q8zad q8zbd q8zcb q8zd0 q8ze3 q8zf4 q8zg6

Similar articles you may find interesting…

  1. A Molecularly Defined Iron-Catalyst for the Selective Hydrogenation of α,β-Unsaturated Aldehydes.

    Chemistry (2013) PMID 23649662

    A selective iron-based catalyst system for the hydrogenation of α,β-unsaturated aldehydes to allylic alcohols is presented. Applying the defined iron-tetraphos complex [FeF(L)][BF4 ] (L=P(PhPPh2 )3 ) in the presence of trifluoroacetic acid a broad range of aldehydes are reduced in...
  2. Study of Ni and Zn doped CeOFeAs: Effect on the structural transition and specific heat capacity

    arXiv:1305.1088 [cond-mat.supr-con] 6 May 2013

    We have systematically studied the substitution of nonmagnetic Zn and Magnetic Ni at iron sites in Ce based oxypnictide. The parent compound (CeOFeAs) shows an anomaly in resistivity around 150 K due to structural Transition from tetragonal (space group: P4/nmm) to orthorhombic structure (space grou...
  3. Quatsomes: vesicles formed by self-assembly of sterols and quaternary ammonium surfactants.

    Langmuir (2013) PMID 23647396

    We show the ability of quaternary ammonium surfactants and sterols to self-assemble forming stable amphiphilic bimolecular building-blocks with the appropriate structural characteristics to form, in aqueous phases, closed bilayers, named quatsomes, with outstanding stability with time and temperatur...