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  4. Nitride protonation and NH3 binding versus N-H bond cleavage in uranium nitrides
 
research article

Nitride protonation and NH3 binding versus N-H bond cleavage in uranium nitrides

Keener, Megan  
•
Scopelliti, Rosario  
•
Mazzanti, Marinella  
August 18, 2021
Chemical Science

The conversion of metal nitrides to NH3 is an essential step in dinitrogen fixation, but there is limited knowledge of the reactivity of nitrides with protons (H+). Herein, we report comparative studies for the reactions of H+ and NH3 with uranium nitrides, containing different types of ancillary ligands. We show that the differences in ancillary ligands, leads to dramatically different reactivity. The nitride group, in nitride-bridged cationic and anionic diuranium(iv) complexes supported by -N(SiMe3)(2) ligands, is resistant toward protonation by weak acids, while stronger acids result in ligand loss by protonolysis. Moreover, the basic -N(SiMe3)(2) ligands promote the N-H heterolytic bond cleavage of NH3, yielding a "naked" diuranium complex containing three bridging ligands, a nitride (N3-) and two NH2 ligands. Conversely, in the nitride-bridged diuranium(iv) complex supported by -OSi((OBu)-Bu-t)(3) ligands, the nitride group is easily protonated to afford NH3, which binds the U(iv) ion strongly, resulting in a mononuclear U-NH3 complex, where NH3 can be displaced by addition of strong acids. Furthermore, the U-OSi((OBu)-Bu-t)(3) bonds were found to be stable, even in the presence of stronger acids, such as NH4BPh4, therefore indicating that -OSi((OBu)-Bu-t)(3) supporting ligands are well suited to be used when acidic conditions are required, such as in the H+/e(-) mediated catalytic conversion of N-2 to NH3.

  • Details
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Type
research article
DOI
10.1039/d1sc03957a
Web of Science ID

WOS:000689243700001

Author(s)
Keener, Megan  
Scopelliti, Rosario  
Mazzanti, Marinella  
Date Issued

2021-08-18

Published in
Chemical Science
Volume

12

Issue

38

Start page

12610

End page

12618

Subjects

Chemistry, Multidisciplinary

•

Chemistry

•

nitrogen-fixation

•

magnetic communication

•

catalytic-reduction

•

ammonia formation

•

carbon-dioxide

•

dinitrogen

•

activation

•

complex

•

reactivity

•

functionalization

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-SB-MM  
ISIC-GE  
Available on Infoscience
September 11, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/181204
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