Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/16783
Title: Efficient Electrosynthesis of Azo Derivatives Using Binder-Free Electrodeposited Organic/Ni-Co Nanohybrid Electrocatalyst
Authors: Wagh, Lalita
Singh, Devraj K.
Samal, Arati
Jain, Anushree
Das, Apurba K.
Keywords: Anodic Azo Coupling Reaction (acr);Aromatic Amines;Azo Aromatics;Bola/ni-co Nanohybrid;Electrodeposition;Electrosynthesis;Oxygen Evolution Reaction (oer);Aromatization;Binders;Cobalt Compounds;Conductive Materials;Cost Effectiveness;Electrocatalysts;Electrodes;Electrolysis;Nanostructured Materials;Nickel Compounds;Nitrates;Oxygen;Substrates;Anodic Azo Coupling Reaction;Aromatic Amines;Azo Aromatic;Azo Coupling Reactions;Bola/ni-co Nanohybrid;Electrosynthesis;Evolution Reactions;Nanohybrids;Oxygen Evolution;Oxygen Evolution Reaction;Electrodeposition
Issue Date: 2025
Publisher: John Wiley and Sons Inc
Citation: Wagh, L., Singh, D., Samal, A., Jain, A., & Das, A. K. (2025). Efficient Electrosynthesis of Azo Derivatives Using Binder-Free Electrodeposited Organic/Ni-Co Nanohybrid Electrocatalyst. ChemCatChem. https://doi.org/10.1002/cctc.202500608
Abstract: In synthetic chemistry and pharmaceuticals, azo aromatics are important building blocks with a wide range of applications. However, their environmentally-friendly synthesis has not been extensively studied. Herein, we have synthesized the peptide bolaamphiphile-based organic–inorganic nanohybrid architecture, on a nickel foam (NF) substrate. The electrodeposition method is used to synthesize a Bola/Ni-Co nanohybrid (Bola = FW-AdiA-WF/Ni-Co, AdiA = adipic acid, W = L-tryptophan, F = L-phenylalanine, Ni = nickel nitrate and Co = cobalt nitrate (2:2)) on nickel foam without the need for any additional conductive material or binder. The resulting electrocatalyst is highly effective in selectively facilitating the anodic azo coupling reaction (ACR) of aromatic amines, converting them into azo aromatics at ambient conditions. This reaction takes place in a 1 M KOH electrolyte at a current density of 15 mA in an undivided cell. The electrocatalyst is effective for a broad range of substrates and can tolerate various functional groups. During the electrosynthesis of azo aromatics, the substrate adheres to the surface of electrocatalyst, which prevents the competing oxygen evolution reaction (OER). The use of water as a solvent avoids the need for excessive chemicals, making this electrosynthesis method safe, cost-effective, and environmentally friendly. Furthermore, the electrocatalyst is highly stable and can be reused for up to seven consecutive cycles. This method offers an energy-efficient route for the synthesis of value-added products with high yields for future prospectives. © 2025 Elsevier B.V., All rights reserved.
URI: https://dx.doi.org/10.1002/cctc.202500608
https://dspace.iiti.ac.in:8080/jspui/handle/123456789/16783
ISSN: 1867-3899
1867-3880
Type of Material: Journal Article
Appears in Collections:Department of Chemistry

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