Reengineered Vitamin B12 for Selective Aqueous Nitrate-to-Ammonium Electrocatalysis via Axial-Ligand Gating

Abstract Vitamin B12 (cobalamin) is an evolutionarily optimized Co-corrin redox cofactor capable of accessing low-valent cobalt states to mediate challenging biological transformations. Here, we reengineer this biological redox platform into an electrode-addressable catalyst for aqueous nitrate-to-ammonium electrocatalysis and demonstrate that catalytic selectivity is governed by the cooperative interplay between axial-ligand electronic tuning and local proton management. An isostructural series of lower-axial variants (C1–C4) was prepared by systematically modifying the native dimethylbenzimidazole environment, culminating in an l-histidine-ligated derivative (C4) bearing proximal −COOH/–NH2 functionality. In mildly acidic MOPS buffer (pH 5.81), C4 exhibited the highest performance, achieving ∼90% NH4+ Faradaic efficiency at −1.1 V vs SCE while effectively suppressing H2 and hydroxylamine formation compared with the other derivatives. Electrochemical studies reveal that axial-ligand engineering modulates the Co(III)/Co(I) redox manifold, facilitating access to the catalytically active Co(I) state and promoting nitrate activation. Mechanistic investigations support a pathway in which electrochemical reduction induces Co–CN bond dissociation and solvent coordination to generate a Co(I)-solvent intermediate, followed by nitrate binding and proton-coupled electron transfer through nitrite and hydroxylamine intermediates to ammonium. 15N isotopic labeling and in situ spectroelectrochemical measurements confirm the formation of nitrate-derived NH4+ and validate the proposed catalytic intermediates. To evaluate the transferability of this molecular design, the catalysts were immobilized on graphene oxide. The heterogeneous systems preserved the activity trend observed in solution, with C4@GO exhibiting the highest NH4+ selectivity, demonstrating that the electronic effects imparted by lower axial-ligand engineering remain operative after immobilization. Together, these results establish vitamin B12 as a versatile Co-corrin platform and identify axial-ligand-controlled electronic tuning coupled with spatially programmed proton delivery as a general strategy for designing efficient molecular and hybrid electrocatalysts for selective multiproton, multielectron nitrate reduction in water.

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Publication Details

Journal
JACS Au
Published
2026-09-21
DOI
https://doi.org/10.1021/jacsau.6c00970
Primary Topic
Porphyrin Metabolism and Disorders
Type
article
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article

Reengineered Vitamin B12 for Selective Aqueous Nitrate-to-Ammonium Electrocatalysis via Axial-Ligand Gating

Arnab Dutta, Rathindranath Biswas, Goutam Kumar Lahiri, Piyali Majumder et al.
JACS Au
Porphyrin Metabolism and Disorders
article

Reengineered Vitamin B12 for Selective Aqueous Nitrate-to-Ammonium Electrocatalysis via Axial-Ligand Gating

Arnab Dutta, Rathindranath Biswas, Goutam Kumar Lahiri, Piyali Majumder, Subho Ghosh, Aritra Guha, Chandan Das
article en

Abstract

Abstract Vitamin B12 (cobalamin) is an evolutionarily optimized Co-corrin redox cofactor capable of accessing low-valent cobalt states to mediate challenging biological transformations. Here, we reengineer this biological redox platform into an electrode-addressable catalyst for aqueous nitrate-to-ammonium electrocatalysis and demonstrate that catalytic selectivity is governed by the cooperative interplay between axial-ligand electronic tuning and local proton management. An isostructural series of lower-axial variants (C1–C4) was prepared by systematically modifying the native dimethylbenzimidazole environment, culminating in an l-histidine-ligated derivative (C4) bearing proximal −COOH/–NH2 functionality. In mildly acidic MOPS buffer (pH 5.81), C4 exhibited the highest performance, achieving ∼90% NH4+ Faradaic efficiency at −1.1 V vs SCE while effectively suppressing H2 and hydroxylamine formation compared with the other derivatives. Electrochemical studies reveal that axial-ligand engineering modulates the Co(III)/Co(I) redox manifold, facilitating access to the catalytically active Co(I) state and promoting nitrate activation. Mechanistic investigations support a pathway in which electrochemical reduction induces Co–CN bond dissociation and solvent coordination to generate a Co(I)-solvent intermediate, followed by nitrate binding and proton-coupled electron transfer through nitrite and hydroxylamine intermediates to ammonium. 15N isotopic labeling and in situ spectroelectrochemical measurements confirm the formation of nitrate-derived NH4+ and validate the proposed catalytic intermediates. To evaluate the transferability of this molecular design, the catalysts were immobilized on graphene oxide. The heterogeneous systems preserved the activity trend observed in solution, with C4@GO exhibiting the highest NH4+ selectivity, demonstrating that the electronic effects imparted by lower axial-ligand engineering remain operative after immobilization. Together, these results establish vitamin B12 as a versatile Co-corrin platform and identify axial-ligand-controlled electronic tuning coupled with spatially programmed proton delivery as a general strategy for designing efficient molecular and hybrid electrocatalysts for selective multiproton, multielectron nitrate reduction in water.

JACS Au
Indian Institute of Science Education and Research Kolkata (IN), Indian Institute of Technology Bombay (IN)
Openalex Percentile: Top 18%
Porphyrin Metabolism and Disorders
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