Investigating the effect of CeO2 on the radical scavenging activity of Pt@CoOx/NC@CeO2 during the electrocatalytic oxygen reduction reaction in acidic and alkaline environments

Materials Advances(2024)

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摘要
Researchers have concentrated on developing electrocatalysts that are especially designed to minimise oxygenated radicals generated in partial oxygen reduction reactions (ORRs). Herein, we report Pt@CoOx/NC@CeO21 as a cost-effective, stable, and highly durable electrocatalyst in both 0.1 M KOH and 0.1 M HClO4 electrocatalytic environments with low platinum loading (ca. 5% only). Outstanding results are delivered by the Pt@CoOx/NC@CeO21 with half-wave potential (E1/2) ∼ 0.89 VRHE in 0.1 M KOH. The optimized electrocatalyst, i.e., Pt@CoOx/NC@CeO21, is also found to be efficient for the ORR in 0.1 M HClO4 with E1/2 ∼ 0.89 VRHE compared to 20 wt% Pt/C. The innovative support (CoOx/NC) obtained through facile calcination of ZIF-12 has been deposited over porous ceria nanorods (CeO2). The platinum nanoparticles are then decorated over CoOx/NC@CeO2. To investigate the influence of cobalt on the electrocatalytic ORR process, platinum-decorated commercial multiwalled carbon nanotubes (Pt@MWCNTs1) were synthesized using the same synthetic methodology. The as-synthesized electrocatalyst (Pt@CoOx/NC@CeO21) demonstrates enhanced mass activity (MA) of ∼263 mA mgPt−1 in 0.1 M KOH and 231 mA mgPt−1 in 0.1 M HClO4 at their E1/2 and an enhanced electrochemical active surface area (ECSA) of ∼261 m2 g−1. The material also demonstrates radical scavenging activity resulting in enhanced durability with a significant amount of current retention for 30 h in both alkaline (99.8%) and acidic electrolytes (99.9%).
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