4.8 Article

Cation-Tuning Induced d-Band Center Modulation on Co-Based Spinel Oxide for Oxygen Reduction/Evolution Reaction

Journal

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
Volume 61, Issue 16, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202114696

Keywords

Spinel Oxide; Oxygen Evolution Reaction; Oxygen Reduction Reaction; Zn-Air Battery

Funding

  1. National Natural Science Foundation of China [21875048]
  2. Outstanding Youth Project of Guangdong Natural Science Foundation [2020B1515020028]
  3. Major Scientific Project of Guangdong University [2017KZDXM059]
  4. Yangcheng Scholars Research Project of Guangzhou [201831820]
  5. Science and Technology Research Project of Guangzhou [202002010007]
  6. Australian Research Council Discovery Early Career Researcher Award [DE220100676]
  7. Australian Research Council [DE220100676] Funding Source: Australian Research Council

Ask authors/readers for more resources

In this study, the structures of spinel oxides were tailored through a simple solvent method, and ACo2O4/NCNTs composites were synthesized for oxygen electrocatalysis. The optimized MnCo2O4/NCNTs demonstrated high activity and durability, showing great potential for application in zinc-air batteries. Density functional theory calculations revealed that substitutions can modulate the charge structure and improve the oxygen electrocatalytic performance.
Atomic substitutions at the tetrahedral site (A(Td)) could theoretically achieve an efficient optimization of the charge at the octahedral site (B-Oh) through the A(Td)-O-B-Oh interactions in the spinel oxides (AB(2)O(4)). Despite substantial progress having been made, the precise control and adjustment of the spinel oxides are still challenging owing to the complexity of their crystal structure. In this work, we demonstrate a simple solvent method to tailor the structures of spinel oxides and use the spinel oxide composites (ACo(2)O(4)/NCNTs, A=Mn, Co, Ni, Cu, Zn) for oxygen electrocatalysis. The optimized MnCo2O4/NCNTs exhibit high activity and excellent durability for oxygen reduction/evolution reactions. Remarkably, the rechargeable liquid Zn-air battery equipped with a MnCo2O4/NCNTs cathode affords a specific capacity of 827 mAh g(Zn)(-1) with a high power density of 74.63 mW cm(-2) and no voltage degradation after 300 cycles at a high charging-discharging rate (5 mA cm(-2)). The density functional theory (DFT) calculations reveal that the substitution could regulate the ratio of Co3+/Co2+ and thereby lead to the modulation of the electronic structure accompanied with the movement of the d-band center. The tetrahedral and octahedral sites interact through the Mn-O-Co, and the Co-Oh(3+) of MnCo2O4 with the optimal charge structure allows a more suitable binding interaction between the active center and the oxygenated species, resulting in superior oxygen electrocatalytic performance.

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