<p>Dielectric barrier discharge plasma has been shown as an effective alternative in renewable NH<sub>3</sub> production, however a catalyst which enhances the process to commercial potential is still being sought. This work investigates three catalysts, CaH<sub>2</sub>, Ca<sub>3</sub>N<sub>2</sub>, and LiH for NH<sub>3</sub> synthesis when subjected to plasma. This work found a maximum synthesis rate of 6440 µmol h<sup>− 1</sup> g<sub>cat</sub><sup>−1</sup> for CaH<sub>2</sub> and an efficiency of 4.0&#xa0;g-NH<sub>3</sub> kWh<sup>− 1</sup> g<sub>cat</sub><sup>−1</sup>. Varying flow ratios to determine effects on synthesis demonstrated CaH<sub>2</sub> and LiH preferred hydrogen rich environments while Ca<sub>3</sub>N<sub>2</sub> performed best in nitrogen rich flows. These results suggest each of the tested catalysts could have different reaction pathways or dependencies. Gas chromatography was used to quantify production levels and optical emission spectroscopy was used to determine vibrational temperatures of molecular nitrogen. These findings introduce three catalysts for use in plasma-based NH<sub>3</sub> synthesis and characterize the potential for increased efficiency of ammonia production.</p>

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Application of Calcium Hydride, Calcium Nitride, and Lithium Hydride Catalysts for Enhanced Ammonia Synthesis in Dielectric Barrier Discharge Plasma

  • Camden E. Carroll,
  • Rajagopalan V. Ranganathan,
  • Ciel C. Voy,
  • Zhili Zhang

摘要

Dielectric barrier discharge plasma has been shown as an effective alternative in renewable NH3 production, however a catalyst which enhances the process to commercial potential is still being sought. This work investigates three catalysts, CaH2, Ca3N2, and LiH for NH3 synthesis when subjected to plasma. This work found a maximum synthesis rate of 6440 µmol h− 1 gcat−1 for CaH2 and an efficiency of 4.0 g-NH3 kWh− 1 gcat−1. Varying flow ratios to determine effects on synthesis demonstrated CaH2 and LiH preferred hydrogen rich environments while Ca3N2 performed best in nitrogen rich flows. These results suggest each of the tested catalysts could have different reaction pathways or dependencies. Gas chromatography was used to quantify production levels and optical emission spectroscopy was used to determine vibrational temperatures of molecular nitrogen. These findings introduce three catalysts for use in plasma-based NH3 synthesis and characterize the potential for increased efficiency of ammonia production.