4.8 Article

Selective electrooxidation of primary amines over a Ni/Co metal-organic framework derived electrode enabling effective hydrogen production in the membrane-free electrolyzer

Journal

JOURNAL OF POWER SOURCES
Volume 535, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2022.231461

Keywords

Primary amine electrooxidation; Membrane-free electrolyzer; Bimetal MOF; Energy-saving; Hydrogen production

Funding

  1. National Natural Science Foundation of China [21871111]
  2. Excellent Youth Foundation of Hubei Province of China [2019CFA078]
  3. Outstanding Youth Science and Technology Innovation Team Project for Colleges and Universities of Hubei Province [T2021036]
  4. Opening Project of Key Laboratory of Optoelectronic Chemical Materials and Devices, Ministry of Education, Jianghan University [JDGD-202012]

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In this study, a bimetallic Ni/Co metal-organic framework derivative was used as the anodic electrocatalyst, achieving a selective conversion of primary amines into nitriles under an oxidant-free condition with good yields and faradaic efficiencies.
The overall water electrolysis always needs an ion-conductive membrane to separate the generated hydrogen and oxygen from the corresponding cathode and anode, which improves the manufacturing cost of the electrolyzer. The substitution of thermodynamically more favorable organic oxidation reactions for oxygen evolution reaction avoids the requirement of the membrane, accompanied by the generation of value-added products at the anode. Herein, with the help of the bimetallic Ni/Co metal-organic framework derivative (t-Ni/Co MOF) as the anodic electrocatalyst, we develop an oxidant-free condition for the selective conversion of primary amines into nitriles. Specifically, aromatic and aliphatic nitriles can be conveniently obtained with good yields and faradaic efficiencies over the t-Ni/Co MOF electrode when coupling with the hydrogen evolution reaction. Notably, benzylamine can be oxidized into benzonitrile even at an ultralow potential of 1.30 V vs. reversible hydrogen electrode (RHE) over the t-Ni/Co MOF electrode, which is lower than that of the reported Ni-based monometallic electrocatalysts for benzylamine elecrooxidation. Control experiments suggest that the reversible electron transfer process of Co2+ <-> Co3+ at a relatively low potential contributes to the formation of higher valence Ni

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