Laser solid-phase synthesis of graphene shell-encapsulated high-entropy alloy nanoparticles

Author:

Liu Zhu1,Liu Yuxiang1,Yuan Jianghuai1,Zhou Jiantao1,Pan Kewen1,Zhang Ran1,Zhao Rongxia1,Li Lin1,Huang Yihe1

Affiliation:

1. Chinese Academy of Science, Ningbo Institute of Materials Technology and Engineering

Abstract

Abstract

Rapid synthesis of high-entropy alloy nanoparticles (HEA NPs) offers new opportunities to develop functional materials in widespread applications. Although some methods have successfully produced HEA NPs, these methods generally require rigorous conditions such as high pressure, high temperature, restricted atmosphere and limited substrates, which impede practical viability. In this work, we report a laser solid-phase synthesis of CrMnFeCoNi nanoparticles by laser irradiation of mixed metal precursors on a laser-induced graphene (LIG) support with a 3D porous structure. The CrMnFeCoNi nanoparticles are embraced by several graphene layers, forming graphene shell-encapsulated HEA nanoparticles. We provide an in-depth understanding of the laser solid-phase synthesis of HEA NPs on LIG supports by simulation and experimental observations, in consideration of mixed metal precursor adsorption, thermal decomposition, reduction through electrons from laser-induced thermionic emission, and liquid beads splitting. The production rate reaches up to 30 g/h under the current laser setup. The laser-synthesized graphene shell-encapsulated CrMnFeCoNi NPs loaded on LIG supports are used directly as 3D binder-free integrated electrodes and exhibited excellent electrocatalytic activity towards oxygen evolution reaction with an overpotential of 293 mV at the current density of 10 mA/cm2 and exceptional stability over 428 hours in alkaline media, outperforming the commercial RuO2 catalyst and the counterpart catalysts reported by other methods. This work also demonstrates the versatility of this technique through the successful synthesis of CrMnFeCoNi oxide, sulfide and phosphide nanoparticles.

Publisher

Research Square Platform LLC

Reference39 articles.

1. High-Entropy Alloy Nanocatalysts for Electrocatalysis;Zhao KN;ACTA PHYSICO-CHIMICA SINICA,2021

2. High-Entropy Alloys in Hexagonal Close-Packed Structure;Gao MC;Metallurgical and Materials Transactions A,2016

3. First hexagonal close packed high-entropy alloy with outstanding stability under extreme conditions and electrocatalytic activity for methanol oxidation;Yusenko KV;Scripta Materialia,2017

4. A Highly Active Star Decahedron Cu Nanocatalyst for Hydrocarbon Production at Low Overpotentials;Choi C;Adv. Mater.,2019

5. First Report on High Entropy Alloy Nanoparticle Decorated Graphene;Rekha MY;Scientific Reports,2018

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