4.6 Article

Estimations of Fe0/-1-N2 interaction energies of iron(0)-dicarbene and its reduced analogue by EDA-NOCV analyses: crucial steps in dinitrogen activation under mild conditions

Journal

RSC ADVANCES
Volume 12, Issue 6, Pages 3465-3475

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ra08348a

Keywords

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Funding

  1. SERB [ECR/2016/000890]
  2. IIT madras
  3. CSIR

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Metal complexes containing low valence iron atoms can bind with dinitrogen molecules and produce ammonia under suitable conditions. The higher affinity between iron atoms and dinitrogen compared to other transition metal atoms is explored in this study. The analysis of the interacting orbitals and energy in the metal complexes provides insights into the mechanism of interaction between dinitrogen and iron atoms.
Metal complexes containing Low valence iron atoms are often experimentally observed to bind with the dinitrogen (N-2) molecule. This phenomenon has attracted the attention of industrialists, chemists and bio-chemists since these N-2-bonded iron complexes can produce ammonia under suitable chemical or electrochemical conditions. The higher binding affinity of the Fe-atom towards N-2 is a bit 'mysterious' compared to that of the other first row transition metal atoms. Fine powders of alpha-Fe-0 are even part of industrial ammonia production (Haber-Bosch process) which operates at high temperature and high pressure. Herein, we report the EDA-NOCV analyses of the previously reported dinitrogen-bonded neutral molecular complex (cAAC(R))(2) Fe-0-N-2 (1) and mono-anionic complex (cAAC(R))(2)Fe-1-N-2 (2) to give deeper insight of the Fe-N-2 interacting orbitals and corresponding pairwise intrinsic interaction energies (cAAC(R) = cyclic alkyl(amino) carbene; R = Dipp or Me). The Fe-0 atom of 1 prefers to accept electron densities from N-2 via sigma-donation while the comparatively electron rich Fe-1 centre of 2 donates electron densities to N-2 via pi-backdonation. However, major stability due to the formation of an Fe-N-2 bond arises due to Fe -> N-2 pi-backdonation in both 1 and 2. The cAAC(R) Eigands act as a charge reservoir around the Fe centre. The electron densities drift away from cAAC Eigands during the binding of N-2 molecules mostly via pi-backdonation. EDA-NOCV analysis suggests that N-2 is a stronger pi-acceptor rather than a sigma-donor.

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