Issue 17, 2024

Design of S, N-codoped Co–Fe dual-atom sites for efficient alkaline oxygen reduction

Abstract

Heteronuclear dual-atom site catalysts exhibit exceptional electrocatalytic performance due to their coordination environments and local structures for electron transfer by introducing heteronuclear metal sites. Additionally, atomic interface tuning has been considered an effective strategy to further tune the performance of diatomic catalysts. In this research, we rationally designed and synthesized Co–Fe dual-atom sites on S, N-codoped carbon (Co–Fe–SNC) through a practical strategy. Benefiting from the synergistic interaction between atomically dispersed bimetallic sites and further surface regulation by S atoms, the obtained Co–Fe–SNC sample exhibits excellent electrocatalytic activity for the oxygen reduction reactions (ORR). Furthermore, density functional theory (DFT) calculations revealed that the heteronuclear dual-atom sites of Co–Fe–SNC effectively altered the rate-determining step of the reaction, and the presence of S atoms further optimized the adsorption and desorption energy barriers of ORR intermediates. This work proposes novel atomically tunable dual-atom site catalysts, which can serve as a valuable reference for the design and development of highly efficient ORR electrocatalysts with practical applicability.

Graphical abstract: Design of S, N-codoped Co–Fe dual-atom sites for efficient alkaline oxygen reduction

Supplementary files

Article information

Article type
Paper
Submitted
30 Oct 2023
Accepted
17 Mar 2024
First published
18 Mar 2024

J. Mater. Chem. A, 2024,12, 10101-10109

Design of S, N-codoped Co–Fe dual-atom sites for efficient alkaline oxygen reduction

N. He, Y. Sun, X. Chen, J. Wang, G. Liang and F. Mo, J. Mater. Chem. A, 2024, 12, 10101 DOI: 10.1039/D3TA06626F

To request permission to reproduce material from this article, please go to the Copyright Clearance Center request page.

If you are an author contributing to an RSC publication, you do not need to request permission provided correct acknowledgement is given.

If you are the author of this article, you do not need to request permission to reproduce figures and diagrams provided correct acknowledgement is given. If you want to reproduce the whole article in a third-party publication (excluding your thesis/dissertation for which permission is not required) please go to the Copyright Clearance Center request page.

Read more about how to correctly acknowledge RSC content.

Social activity

Spotlight

Advertisements