Efficient ammonia synthesis over a Ru/LaCeO catalyst pre-reduced at high temperature.

Chem Sci

Department of Integrated Science and Technology , Faculty of Science and Technology , Oita University, 700 Dannoharu , Oita 870-1192 , Japan . Email:

Published: February 2018

AI Article Synopsis

  • Ammonia is crucial for fertilizer production and energy storage, but the conventional Haber-Bosch process is energy-intensive, highlighting the need for efficient catalysts.
  • A new catalyst, Ru/LaCeO pre-reduced at 650 °C, showed impressive ammonia synthesis rates at mild conditions, achieving up to 44.4 mmol g h at 3.0 MPa and 350 °C without hydrogen poisoning.
  • The effectiveness of this catalyst is attributed to fine Ru particles interacting with LaCeO, which helps weaken the nitrogen bond, thereby facilitating its cleavage, a key step in ammonia production.

Article Abstract

Ammonia is an important feedstock for producing fertiliser and is also a potential energy carrier. However, the process currently used for ammonia synthesis, the Haber-Bosch process, consumes a huge amount of energy; therefore the development of new catalysts for synthesising ammonia at a high rate under mild conditions (low temperature and low pressure) is necessary. Here, we show that Ru/LaCeO pre-reduced at an unusually high temperature (650 °C) catalysed ammonia synthesis at extremely high rates under mild conditions; specifically, at a reaction temperature of 350 °C, the rates were 13.4, 31.3, and 44.4 mmol g h at 0.1, 1.0, and 3.0 MPa, respectively. Kinetic analysis revealed that this catalyst is free of hydrogen poisoning under the conditions tested. Electron energy loss spectroscopy combined with O absorption capacity measurements revealed that the reduced catalyst consisted of fine Ru particles (mean diameter < 2.0 nm) that were partially covered with partially reduced LaCeO and were dispersed on a thermostable support. Furthermore, Fourier transform infrared spectra measured after N addition to the catalyst revealed that N adsorption on Ru atoms that interacted directly with the reduced LaCeO weakened the N[triple bond, length as m-dash]N bond and thus promoted its cleavage, which is the rate-determining step for ammonia synthesis. Our results indicate that high-temperature pre-reduction of this catalyst, which consists of Ru supported on a thermostable composite oxide with a cubic fluorite structure and containing reducible cerium, resulted in the formation of many sites that were highly active for N reduction by hydrogen.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5897884PMC
http://dx.doi.org/10.1039/c7sc05343fDOI Listing

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