Energy-Efficient Small-Scale Ammonia Synthesis Process with Plasma-Enabled Nitrogen Oxidation and Catalytic Reduction of Adsorbed NOx

ChemSusChem. 2022 May 20;15(10):e202102526. doi: 10.1002/cssc.202102526. Epub 2022 Mar 25.

Abstract

Industrial ammonia production without CO2 emission and with low energy consumption is one of the technological grand challenges of this age. Current Haber-Bosch ammonia mass production processes work with a thermally activated iron catalyst needing high pressure. The need for large volumes of hydrogen gas and the continuous operation mode render electrification of Haber-Bosch plants difficult to achieve. Electrochemical solutions at low pressure and temperature are faced with the problematic inertness of the nitrogen molecule on electrodes. Direct reduction of N2 to ammonia is only possible with very reactive chemicals such as lithium metal, the regeneration of which is energy intensive. Here, the attractiveness of an oxidative route for N2 activation was presented. N2 conversion to NOx in a plasma reactor followed by reduction with H2 on a heterogeneous catalyst at low pressure could be an energy-efficient option for small-scale distributed ammonia production with renewable electricity and without intrinsic CO2 footprint.

Keywords: NOx storage; green ammonia; nitrogen oxides; plasma chemistry; process electrification.

MeSH terms

  • Ammonia* / chemistry
  • Carbon Dioxide
  • Catalysis
  • Nitrogen* / chemistry
  • Oxidation-Reduction

Substances

  • Carbon Dioxide
  • Ammonia
  • Nitrogen