Universal synthesis of high-entropy alloy nanostructures with femtosecond lasers

High-entropy alloy nanostructures (HEA-NSs) hold promise in advanced catalysis and materials science, but lack a robust and universal synthetic strategy designed at an atomic level. Here, femtosecond lasers are used to prepare HEA-NSs, from single atoms to 100 nm nanoparticles, either free-standing or supported on a variety of substrates. Ultrafast excitation enables precise control over electron dynamics and instantaneously formed solvated electrons induce rapid, nonselective ion reduction ∼100 picoseconds post-irradiation, followed by stochastic atom nucleation and formation of atomically dispersed HEA-NSs through diffusion-controlled dynamics beyond nanoseconds. These processes are governed by the spatiotemporal confinement effect (STCE), with atomic diffusion restricted within nanoseconds, thereby enabling kinetic trapping of metastable nanoclusters with strict atomic-level dispersity. As a demonstration, FeCoNiRuPt achieved a peak power density of 2.1 W cm −2 for oxygen reduction reaction (ORR). Femtosecond lasers are robust and effective tools for the universal preparation of difficult-to-synthesize metastable nanoparticles by controlling electron dynamics.

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Publication Details

Journal
Science Advances
Published
2026-09-18
DOI
https://doi.org/10.1126/sciadv.aef9030
Primary Topic
High Entropy Alloys Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Universal synthesis of high-entropy alloy nanostructures with femtosecond lasers

Yiheng Dai, Jihan Zhou, Xianze Zhang, Zikang Su et al.
Science Advances
High Entropy Alloys Studies
article

Universal synthesis of high-entropy alloy nanostructures with femtosecond lasers

Yiheng Dai, Jihan Zhou, Xianze Zhang, Zikang Su, Lan Jiang, 袁世龙 Yuan Shilong, Xueqiang Zhang, Haozhe Gai, Xingdong Wang
article en

Abstract

High-entropy alloy nanostructures (HEA-NSs) hold promise in advanced catalysis and materials science, but lack a robust and universal synthetic strategy designed at an atomic level. Here, femtosecond lasers are used to prepare HEA-NSs, from single atoms to 100 nm nanoparticles, either free-standing or supported on a variety of substrates. Ultrafast excitation enables precise control over electron dynamics and instantaneously formed solvated electrons induce rapid, nonselective ion reduction ∼100 picoseconds post-irradiation, followed by stochastic atom nucleation and formation of atomically dispersed HEA-NSs through diffusion-controlled dynamics beyond nanoseconds. These processes are governed by the spatiotemporal confinement effect (STCE), with atomic diffusion restricted within nanoseconds, thereby enabling kinetic trapping of metastable nanoclusters with strict atomic-level dispersity. As a demonstration, FeCoNiRuPt achieved a peak power density of 2.1 W cm −2 for oxygen reduction reaction (ORR). Femtosecond lasers are robust and effective tools for the universal preparation of difficult-to-synthesize metastable nanoparticles by controlling electron dynamics.

Science AdvancesVol. 12(38)
Sinopec (China) (CN), Beijing Institute of Technology (CN), Peking University (CN), Beijing National Laboratory for Molecular Sciences (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
High Entropy Alloys Studies
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Universal synthesis of high-entropy alloy nanostructures with femtosecond lasers — Yiheng Dai, Jihan Zhou, et al. · Science Advances (2026) | TGRS Research Map | TGRS