Structural Modulation of Nanographenes Enabled by Defects, Size and Doping for Oxygen Reduction Reaction.

Angew Chem Int Ed Engl

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, School of Materials Science and Engineering, Wuhan University of Technology, Luoshi Road 122, 430070, Wuhan, China.

Published: January 2025

AI Article Synopsis

  • Nanographenes are emerging as promising alternatives to precious metals for the oxygen reduction reaction (ORR) due to their low cost, eco-friendliness, and excellent conductivity.
  • *The enhanced performance of nanographenes in ORR is linked to factors like heteroatom doping, size, and defects, which help optimize charge distribution and improve electron transfer.
  • *The review discusses the basic properties of nanographenes in ORR, their performance-enhancing factors, and addresses the challenges and future perspectives of using them as advanced electrocatalysts.

Article Abstract

Nanographenes are among the fastest-growing materials used for the oxygen reduction reaction (ORR) thanks to their low cost, environmental friendliness, excellent electrical conductivity, and scalable synthesis. The perspective of replacing precious metal-based electrocatalysts with functionalized graphene is highly desirable for reducing costs in energy conversion and storage systems. Generally, the enhanced ORR activity of the nanographenes is typically deemed to originate from the heteroatom doping effect, size effect, defects effect, and/or their synergistic effect. All these factors can efficiently modify the charge distribution on the sp-conjugated carbon framework, bringing about optimized intermediate adsorption and accelerated electron transfer steps during ORR. In this review, the fundamental chemical and physical properties of nanographenes are first discussed about ORR applications. Afterward, the role of doping, size, defects, and their combined influence in boosting nanographenes' ORR performance is introduced. Finally, significant challenges and essential perspectives of nanographenes as advanced ORR electrocatalysts are highlighted.

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Source
http://dx.doi.org/10.1002/anie.202415071DOI Listing

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