Electrochemical Insight into NaxCoO2 for the Oxygen Evolution Reaction and the Oxygen Reduction Reaction

电化学 氧气 氧化还原 电子转移 析氧 催化作用 化学 无机化学 电催化剂 化学工程 物理化学 电极 生物化学 工程类 有机化学
作者
Shaowei Song,Yaqin Wang,Ryan C. Davis,Zhensong Ren,Xin Xiao,Guang Yang,Dezhi Wang,Jiming Bao,Qinyong Zhang,Shuo Chen,Zhifeng Ren
出处
期刊:Chemistry of Materials [American Chemical Society]
卷期号:33 (16): 6299-6310 被引量:27
标识
DOI:10.1021/acs.chemmater.1c00008
摘要

Layered NaxCoO2 provides multiple degrees of freedom for manipulating its structure and physical properties by tuning the Na concentration, leading to specific functionalities including thermoelectricity, superconductivity, and potentiality in Li-/Na-ion batteries. However, the contribution of varied Na to charge transfer, electrocatalytic kinetics, and energetics in terms of the electrochemical interface reaction for the oxygen evolution reaction (OER) in water splitting and the oxygen reduction reaction (ORR) in fuel cells is not yet fully understood. This work reveals that varied Na concentrations indirectly affect the electrochemical OER or ORR activity by changing the Co–O bond in the constituent CoO6 octahedron of NaxCoO2. Tuning the Na concentration gives rise to the unique evolution of the electronic configuration and subsequently further enhances the Co–O bond's covalency, which results in promoting the catalytic kinetics of OER and ORR. As the Fermi level descends deeper into the O 2p orbitals with increasing Na extraction, the lattice oxygen becomes active in the proton–electron transfer process, which is reflected in the pH and oxygen-concentration dependence of the OER activity. Based on the characterization of its electrochemical properties, the high electrocatalytic activity of Na0.75CoO2, which exhibits competent OER activity superior to that of IrO2, is rationalized. Meanwhile, intrinsic Na0.75CoO2 reveals a half-wave potential of 0.74VRHE for ORR. The evolution of the structure and the electronic configuration of NaxCoO2 related to its electrochemical properties enables further improved NaxCoO2-based catalysts for efficient electrochemical OER and ORR.

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