Issue 5, 2025

Facile encapsulation strategy for uniformly-dispersed catalytic nanoparticles/carbon nanofibers toward advanced Zn–air battery

Abstract

Catalyst-loaded carbon nanofibers (CNFs) have been a promising platform to enhance the efficiency of key electrochemical reactions, crucial for the operation of fuel cells, metal–air batteries, and the reduction of pollutants. A persistent challenge, however, has been the uniform distribution and strong binding of ultrafine active catalytic nanoparticles on the CNF surfaces. To overcome this issue, this study introduces a facile synthesis strategy using electrospun blended nanofibers of polyacrylonitrile and poly(4-vinylpyridine) (P4VP) for the uniform attachment of various metal catalyst ions. Metal complex ion precursors are selectively loaded into P4VP domains and subsequent one-step pyrolysis to readily obtain CNFs densely populated with uniformly dispersed metal nanoparticles enveloped by a P4VP-derived nitrogen-doped carbon layer. The final C@Ir/CNF1000, composed of iridium nanoparticles (average diameter: ∼3.38 ± 1.18 nm) on CNFs with a carbon overlayer and carbonized at 1000 °C, significantly improves the dual-functionality and cycle stability of zinc–air batteries. Our findings present a novel and scalable strategy for improving catalytic efficiency in energy technologies, marking a significant contribution to the field of sustainable energy and environmental applications.

Graphical abstract: Facile encapsulation strategy for uniformly-dispersed catalytic nanoparticles/carbon nanofibers toward advanced Zn–air battery

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Article information

Article type
Paper
Submitted
26 Nov 2024
Accepted
02 Jan 2025
First published
03 Jan 2025

J. Mater. Chem. A, 2025,13, 3339-3349

Facile encapsulation strategy for uniformly-dispersed catalytic nanoparticles/carbon nanofibers toward advanced Zn–air battery

S. Yoon, D. Boo, H. Na, T. Kim, H. Chang, J. S. Park, S. Cho, J. Jung and H. M. Jin, J. Mater. Chem. A, 2025, 13, 3339 DOI: 10.1039/D4TA08388A

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