4.6 Article

A theoretical evaluation of possible transition metal electro-catalysts for N-2 reduction

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 14, Issue 3, Pages 1235-1245

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c1cp22271f

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Funding

  1. Lundbeck foundation
  2. Danish Ministry of Science, Technology and Innovation
  3. Danish Research Councils (STVF)
  4. Department of Energy, Basic Energy Sciences
  5. MC-RTN network Hydrogen
  6. Icelandic Research Foundation

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Theoretical studies of the possibility of forming ammonia electrochemically at ambient temperature and pressure are presented. Density functional theory calculations were used in combination with the computational standard hydrogen electrode to calculate the free energy profile for the reduction of N-2 admolecules and N adatoms on several close-packed and stepped transition metal surfaces in contact with an acidic electrolyte. Trends in the catalytic activity were calculated for a range of transition metal surfaces and applied potentials under the assumption that the activation energy barrier scales with the free energy difference in each elementary step. The most active surfaces, on top of the volcano diagrams, are Mo, Fe, Rh, and Ru, but hydrogen gas formation will be a competing reaction reducing the faradaic efficiency for ammonia production. Since the early transition metal surfaces such as Sc, Y, Ti, and Zr bind N-adatoms more strongly than H-adatoms, a significant production of ammonia compared with hydrogen gas can be expected on those metal electrodes when a bias of - 1 V to - 1.5 V vs. SHE is applied. Defect-free surfaces of the early transition metals are catalytically more active than their stepped counterparts.

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