Dual-axial engineering on atomically dispersed catalysts for ultrastable oxygen reduction in acidic and alkaline solutions

Author:

Dan Meng12,Zhang Xiting1,Yang Yongchao3,Yang Jingfei1,Wu Fengxiu1,Zhao Shenlong3,Liu Zhao-Qing1ORCID

Affiliation:

1. School of Chemistry and Chemical Engineering/Institute of Clean Energy Materials/Guangzhou Key Laboratory for Clean Energy and Materials/Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Ministry of Education, Guangzhou University, Guangzhou 510006, People’s Republic of China

2. College of Materials Science & Engineering, Taiyuan University of Technology, Shanxi 030024, People’s Republic of China

3. School of Chemical and Biomolecular Engineering, The University of Sydney, Sydney, NSW 2006, Australia

Abstract

Atomically dispersed catalysts are a promising alternative to platinum group metal catalysts for catalyzing the oxygen reduction reaction (ORR), while limited durability during the electrocatalytic process severely restricts their practical application. Here, we report an atomically dispersed Co-doped carbon−nitrogen bilayer catalyst with unique dual-axial Co–C bonds (denoted as Co/DACN) by a smart phenyl-carbon-induced strategy, realizing highly efficient electrocatalytic ORR in both alkaline and acidic media. The corresponding half-wave potential for ORR is up to 0.85 and 0.77 V (vs. reversible hydrogen electrode (RHE)) in 0.5 M H 2 SO 4 and 0.1 M KOH, respectively, representing the best ORR activity among all non-noble metal catalysts reported to date. Impressively, the Zn–air battery (ZAB) equipped with Co/DACN cathode achieves outstanding durability after 1,688 h operation at 10 mA cm −2 with a high current density (154.2 mA cm −2 ) and a peak power density (210.1 mW cm −2 ). Density functional theory calculations reveal that the unique dual-axial cross-linking Co−C bonds of Co/DACN significantly enhance the stability during ORR and also facilitate the 4e ORR pathway by forming a joint electron pool due to the improved interlayer electron mobility. We believe that axial engineering opens a broad avenue to develop high-performance heterogeneous electrocatalysts for advanced energy conversion and storage.

Funder

China Postdoctoral Science Foundation

National Natural Science Foundation of China

National Natureal Science Foundation of China

Ourstanding Youth Project of Guangdong Natural Science Foundation

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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