4.8 Article

Altering Ligand Fields in Single-Atom Sites through Second-Shell Anion Modulation Boosts the Oxygen Reduction Reaction

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 144, 期 5, 页码 2197-2207

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c11331

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资金

  1. National Science Foundation [CHE-1900401]
  2. National Science Foundation through the UC Irvine Materials Research Science and Engineering [DMR-2011967]
  3. National Science Foundation Major Research Instrumentation Program [CHE-1338173]
  4. DOE Office of Science [DE-SC0012704]

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Researchers successfully manipulate the structure and oxygen reduction reaction (ORR) performance of single-atom Ru-N-C catalysts using an S-anion coordination strategy, resulting in outstanding long-term durability and high activity. Metal-air batteries using this catalyst also exhibit fast kinetics and excellent stability.
Single-atom catalysts based on metal-N-4 moieties and anchored on carbon supports (defined as M-N-C) are promising for oxygen reduction reaction (ORR). Among those, M-N-C catalysts with 4d and 5d transition metal (TM4d,5d) centers are much more durable and not susceptible to the undesirable Fenton reaction, especially compared with 3d transition metal based ones. However, the ORR activity of these TM4d,5d-N-C catalysts is still far from satisfactory; thus far, there are few discussions about how to accurately tune the ligand fields of single-atom TM4d,5d sites in order to improve their catalytic properties. Herein, we leverage single-atom Ru-N-C as a model system and report an S-anion coordination strategy to modulate the catalyst's structure and ORR performance. The S anions are identified to bond with N atoms in the second coordination shell of Ru centers, which allows us to manipulate the electronic configuration of central Ru sites. The S-anion-coordinated Ru-N-C catalyst delivers not only promising ORR activity but also outstanding long-term durability, superior to those of commercial Pt/C and most of the near-term single-atom catalysts. DFT calculations reveal that the high ORR activity is attributed to the lower adsorption energy of ORR intermediates at Ru sites. Metal-air batteries using this catalyst in the cathode side also exhibit fast kinetics and excellent stability.

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