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April 11, 2023National Science Review104 citationsOpen Access

Unraveling the electrophilic oxygen-mediated mechanism for alcohol electrooxidation on NiO

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WCWei ChenJSJianqiao ShiCXChao Xie

Key Points

  • This study aims to unravel the mechanisms of alcohol electrooxidation on NiO during nucleophile oxidation reactions.
  • Investigated electrochemical generation of Ni3+-(OH)ads during alcohol electrooxidation.
  • Examined two electrophilic oxygen-mediated mechanisms: hydrogen atom transfer and C-C bond cleavage.
  • Established a unified mechanism for the electrooxidation process of primary alcohols and vicinal diols.
  • Identified that EOM involving hydrogen atom transfer is critical for converting primary alcohols to carboxylic acids.
  • Determined that EOM involving C-C bond cleavage is essential for converting vicinal diols to carboxylic acid and formic acid.
  • Provided insights into the interaction between electrochemical and non-electrochemical reactions during nucleophile oxidation.

Abstract

Aqueous organic electrosynthesis such as nucleophile oxidation reaction (NOR) is an economical and green approach. However, its development has been hindered by the inadequate understanding of the synergy between the electrochemical and non-electrochemical steps. In this study, we unravel the NOR mechanism for the primary alcohol/vicinal diol electrooxidation on NiO. Thereinto, the electrochemical step is the generation of Ni3+-(OH)ads, and the spontaneous reaction between Ni3+-(OH)ads and nucleophiles is an electrocatalyst-induced non-electrochemical step. We identify that two electrophilic oxygen-mediated mechanisms (EOMs), EOM involving hydrogen atom transfer (HAT) and EOM involving C-C bond cleavage, play pivotal roles in the electrooxidation of primary alcohol to carboxylic acid and the electrooxidation of vicinal diol to carboxylic acid and formic acid, respectively. Based on these findings, we establish a unified NOR mechanism for alcohol electrooxidation and deepen the understanding of the synergy between the electrochemical and non-electrochemical steps during NOR, which can guide the sustainable electrochemical synthesis of organic chemicals.

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Cite This Study

Chen et al. (2023) studied this question.

synapsesocial.com/papers/69daa1fa85037e71b2684357https://doi.org/10.1093/nsr/nwad099
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