Catalytic N2-to-NH3 (or -N2H4) Conversion by Well-Defined Molecular Coordination Complexes

Chem Rev. 2020 Jun 24;120(12):5582-5636. doi: 10.1021/acs.chemrev.9b00638. Epub 2020 Apr 30.

Abstract

Nitrogen fixation, the six-electron/six-proton reduction of N2, to give NH3, is one of the most challenging and important chemical transformations. Notwithstanding the barriers associated with this reaction, significant progress has been made in developing molecular complexes that reduce N2 into its bioavailable form, NH3. This progress is driven by the dual aims of better understanding biological nitrogenases and improving upon industrial nitrogen fixation. In this review, we highlight both mechanistic understanding of nitrogen fixation that has been developed, as well as advances in yields, efficiencies, and rates that make molecular alternatives to nitrogen fixation increasingly appealing. We begin with a historical discussion of N2 functionalization chemistry that traverses a timeline of events leading up to the discovery of the first bona fide molecular catalyst system and follow with a comprehensive overview of d-block compounds that have been targeted as catalysts up to and including 2019. We end with a summary of lessons learned from this significant research effort and last offer a discussion of key remaining challenges in the field.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, Non-P.H.S.
  • Review

MeSH terms

  • Ammonia / chemical synthesis*
  • Ammonia / chemistry
  • Carbon / chemistry
  • Catalysis
  • Ferric Compounds / chemistry
  • Hydrazines / chemical synthesis*
  • Hydrazines / chemistry
  • Iron / chemistry
  • Molybdenum / chemistry
  • Nitrogen / chemistry*
  • Nitrogen Fixation

Substances

  • Ferric Compounds
  • Hydrazines
  • Carbon
  • Ammonia
  • Molybdenum
  • Iron
  • Nitrogen