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February 12, 2026Angewandte Chemie International Edition0 citationsOpen Access

Remote Positioning of Cations Tunes Catalytic Fe‐Mediated Nitrogen Fixation Selectivity for Hydrazine Instead of Ammonia in Protic Media

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LNLucie NurdinHJHoimin JungJPJonas C. Peters

Key Points

  • The study aims to understand how positioning cations affects selectivity in nitrogen reduction to hydrazine vs ammonia.
  • Utilized a mechanism-guided design approach for catalyst development.
  • Incorporated cationic and proton-responsive groups into a phosphino-borane ligand framework.
  • Conducted computational analyses to evaluate redox potential shifts.
  • Synthetized iron complexes for catalytic nitrogen reduction in methanol.
  • Achieved hydrazine selectivity exceeding 20:1 over ammonia.
  • Catalysts enabled N2 reduction yields up to 73% per reducing equivalent consumed.
  • Redox potential of hydrazido intermediate was shifted by >400 mV, influencing product selectivity.

Abstract

ABSTRACT Understanding the basis of product selectivity is a central issue in catalyst design. Catalytic nitrogen reduction (N 2 R) provides a salient example; whereas ammonia (NH 3 ) is the common product of N 2 R, hydrazine (N 2 H 4 ) is produced under certain conditions. Using mechanism‐guided design, we report a strategy for tuning redox potential that enables selective reduction of dinitrogen to hydrazine by iron complexes in polar protic media. Incorporation of cationic trimethylammonium (NMe 3 + ) or proton‐responsive dimethylamino (NMe 2 ) groups into a tris(phosphino)borane (P 3 B ) ligand framework affords redox‐tunable iron precatalysts that operate efficiently in methanol. Computational analyses reveal that these ligand modifications anodically shift the reduction potential of an iron hydrazido (Fe═NNH 2 ) intermediate by >400 mV, thereby influencing the key branch point for hydrazine versus ammonia. Critical to success is positioning the cationic charges remote from the Fe–N 2 binding site to preserve the high degree of N 2 activation required for functionalization. Newly prepared tricationic iron complexes, soluble and stable in polar protic media, catalyze N 2 R with N‐fixed yields of up to 73% per reducing equivalent consumed, and with hydrazine selectivity exceeding 20:1 over ammonia. This work highlights the use of remote electrostatic effects to tune multi‐electron catalytic product profiles from a 6e – to a 4e – product.

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Cite This Study

Nurdin et al. (2026) studied this question.

synapsesocial.com/papers/698d6e7b5be6419ac0d543ddhttps://doi.org/10.1002/anie.202524836
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