PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 10, 2026ACS Applied Energy Materials0 citationsOpen Access

Elucidating the Structural and Electronic Effects of Ni and Mn Cationic Incorporation on CoOOH for Efficient Benzyl Alcohol Electrooxidation

View Full Paper
EAEmmanuel Sunday AransiolaSPSahanaz ParvinMAMohamed Ammar

Key Points

  • This research aims to understand how Ni and Mn affect the performance of CoOOH electrocatalysts in the oxidation of benzyl alcohol.
  • Conducted electrochemical analyses to assess performance of CoOOH with Ni and Mn incorporation.
  • Performed microscopic and spectroscopic analyses to investigate structural changes and charge transfer properties.
  • Evaluated the performance of a trimetallic electrocatalyst composed of Ni and Mn in CoOOH.
  • Measured benzyl alcohol conversion and Faradaic efficiency.
  • Assessed stability over 24 hours at a specified voltage.
  • Ni incorporation enhanced charge-transfer kinetics and overall catalytic activity.
  • Mn provided initial stabilization but later inhibited some Co sites, leading to gradual degradation.
  • The trimetallic electrocatalyst achieved 92.9% benzyl alcohol conversion and 91.4% Faradaic efficiency after 24 hours.

Abstract

Transition-metal oxyhydroxides such as CoOOH are promising low-cost electrocatalysts for the selective electrooxidation of organic molecules, yet the influence of ubiquitous transition-metal impurities on their performance and durability remains poorly understood. Here, we experimentally probed the individual and synergistic electrochemical and structural effects of Ni and Mn incorporations into model CoOOH electrocatalysts toward an efficient benzyl alcohol oxidation reaction (BAOR). Comprehensive electrochemical, microscopic, and spectroscopic analyses reveal that Ni incorporation enhances charge-transfer kinetics and overall activity through the formation of catalytically active Ni3+ sites, whereas Mn exhibited a more complex but interesting role. At the early stages of operation, Mn4+ acts as a stabilizing surface layer that mitigates catalyst degradation but partially blocks Co sites before they undergo gradual leaching. The concurrent incorporation of both Ni and Mn yields a trimetallic 2NMC@NF electrocatalyst that integrates the activity benefits of Ni with the stability conferred by Mn, achieving 92.9% benzyl alcohol conversion and 91.4% Faradaic efficiency after 24 h at 1.5 V vs RHE. These findings elucidate how trace Ni and Mn impurities, often introduced from electrolytes or external sources, can modulate the lattice and electronic structure of CoOOH, offering a design strategy for enhancing both activity and long-term stability in electrocatalytic organic oxidation.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Aransiola et al. (2026) studied this question.

synapsesocial.com/papers/69d892886c1944d70ce03f2chttps://doi.org/10.1021/acsaem.5c04095
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Electrochemical alcohol oxidation reaction on Precious‐Metal‐Free catalysts: Mechanism, activity, and selectivity2024 · 68 citations
  2. 2An overview on Pd-based electrocatalysts for the hydrogen evolution reaction2018 · 353 citations
  3. 3Enhancing capacitance behaviour of CoOOH nanostructures using transition metal dopants by ambient oxidation2016 · 29 citations
  4. 4Electrochemical conversion of alcohols for hydrogen production: a short overview2016 · 120 citations
  5. 5Recent advances in the electrooxidation of biomass-based organic molecules for energy, chemicals and hydrogen production2020 · 106 citations