4.7 Article

Far-from-equilibrium electrosynthesis ramifies high-entropy alloy for alkaline hydrogen evolution

Journal

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
Volume 166, Issue -, Pages 234-240

Publisher

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2023.05.040

Keywords

High-entropy alloys; Nanostructures; Electrocatalysis; Hydrogen evolution reaction; Far-from-equilibrium synthesis

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High-entropy alloys (HEAs) provide an ideal platform for developing highly active electrocatalysts and investigating the synergy of mixed elements. Far-from-equilibrium synthesis of HEAs at the nanoscale is challenging under electrochemical environments. This study demonstrates the use of electrochemical overpotential to create a far-from-equilibrium condition and construct hierarchical and self-supporting high-entropy alloy nanostructures, opening up new possibilities for energy and catalysis applications.
High-entropy alloys (HEAs) provide an ideal platform for developing highly active electrocatalysts and investigating the synergy of mixed elements. Far-from-equilibrium synthesis holds great potential for fabricating HEAs at the nanoscale by rapidly shifting the thermodynamic conditions and manipulating the growth kinetics. While far-from-equilibrium synthesis of nanomaterials has been successful under thermochemical conditions, it is markedly challenging under electrochemical environments, as the use of an electrolyte limits the accessible temperature window and the temporal tunability of temperature. Herein, we demonstrate that applying a large electrochemical overpotential would create a far-from-equilibrium condition as changing the temperature of the system by considering the equation AG = AH - T AS + nF Ailf. An electrochemical far-from-equilibrium approach is thus setup for constructing hierarchical and self-supporting high-entropy alloy nanostructures. The large overpotential drives the simultaneous reduction of multiple cations and the subsequent formation of a single-phase alloy. As a proof-of-concept, hierarchical Fe 0.22 Co 0.18 Ni 0.18 Cr 0.14 Cu 0.28 was fabricated and used as an electrocatalyst for the hydrogen evolution reaction in alkaline media. The noble-metal-free HEA exhibits an overpotential of 84 mV at a current density of 10 mA cm -2 , which is among the lowest even compared to noble metal-based electrocatalysts. This work opens a new avenue for building a variety of HEAs for energy and catalysis applications.& COPY; 2023 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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