Tailoring Tensile Properties of Al88Ni10MM2 Metallic Glass by In-situ Precipitation of FCC-Al Nanocrystals under Controlled Cooling Rates

Amorphous alloys offer unique opportunities for tailoring microstructures via non-equilibrium processing; however, precise control of nanoscale crystallization during rapid solidification remains challenging without post-solidification heat treatments. Herein, we demonstrate that in-situ precipitation of FCC-Al nanocrystals in an Al 88 Ni 10 MM 2 (MM: Ce-rich misch metal) metallic glass can be effectively controlled solely by tuning the cooling rate during melt-spinning. By systematically varying the wheel speed from 40 m/s to 10 m/s, corresponding to cooling rates from 2.5 × 10⁶ K/s to 4.0 × 10⁵ K/s, we achieve a substantial increase in the number density of FCC-Al nanoprecipitates from 2.15 × 10²¹ to 1.55 × 10²² m⁻³, while maintaining a nearly constant nanocrystal size (∼5–6 nm). To elucidate the governing nucleation kinetics, nucleation delay times were quantified using flash differential scanning calorimetry and employed to construct Time-Temperature-Transformation and Continuous-Cooling-Transformation diagrams. Statistical analysis of nucleation temperatures enables direct estimation of nucleation rates under different cooling conditions, revealing that reduced cooling rates significantly enhance nucleation kinetics, leading to dense in-situ precipitation. In contrast, crystal growth remains strongly diffusion-limited under rapid solidification conditions, thereby constraining precipitate coarsening. Consequently, we establish a cooling-rate-dependent framework for decoupling nucleation and growth during melt-spinning, enabling high-density nanocrystal formation without significant size evolution. Mechanical testing, including ribbon bending and cyclic tensile experiments, confirms that such controlled in-situ nanocrystallization simultaneously enhances both tensile strength and plasticity, addressing one of the long-standing challenges in metallic glass research. This work provides a processing strategy for cooling-driven microstructural design in metallic glasses, offering a pathway to bypass conventional annealing treatments while achieving enhanced mechanical performance.

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Journal
Acta Materialia
Published
2026-09-01
DOI
https://doi.org/10.1016/j.actamat.2026.122724
Primary Topic
Metallic Glasses and Amorphous Alloys
Type
article
Field-Weighted Citation Impact
0.00

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article

Tailoring Tensile Properties of Al88Ni10MM2 Metallic Glass by In-situ Precipitation of FCC-Al Nanocrystals under Controlled Cooling Rates

Eun Soo Park, John H. Perepezko, Wan Kim
Acta Materialia
Metallic Glasses and Amorphous Alloys
article

Tailoring Tensile Properties of Al88Ni10MM2 Metallic Glass by In-situ Precipitation of FCC-Al Nanocrystals under Controlled Cooling Rates

Eun Soo Park, John H. Perepezko, Wan Kim
article en

Abstract

Amorphous alloys offer unique opportunities for tailoring microstructures via non-equilibrium processing; however, precise control of nanoscale crystallization during rapid solidification remains challenging without post-solidification heat treatments. Herein, we demonstrate that in-situ precipitation of FCC-Al nanocrystals in an Al 88 Ni 10 MM 2 (MM: Ce-rich misch metal) metallic glass can be effectively controlled solely by tuning the cooling rate during melt-spinning. By systematically varying the wheel speed from 40 m/s to 10 m/s, corresponding to cooling rates from 2.5 × 10⁶ K/s to 4.0 × 10⁵ K/s, we achieve a substantial increase in the number density of FCC-Al nanoprecipitates from 2.15 × 10²¹ to 1.55 × 10²² m⁻³, while maintaining a nearly constant nanocrystal size (∼5–6 nm). To elucidate the governing nucleation kinetics, nucleation delay times were quantified using flash differential scanning calorimetry and employed to construct Time-Temperature-Transformation and Continuous-Cooling-Transformation diagrams. Statistical analysis of nucleation temperatures enables direct estimation of nucleation rates under different cooling conditions, revealing that reduced cooling rates significantly enhance nucleation kinetics, leading to dense in-situ precipitation. In contrast, crystal growth remains strongly diffusion-limited under rapid solidification conditions, thereby constraining precipitate coarsening. Consequently, we establish a cooling-rate-dependent framework for decoupling nucleation and growth during melt-spinning, enabling high-density nanocrystal formation without significant size evolution. Mechanical testing, including ribbon bending and cyclic tensile experiments, confirms that such controlled in-situ nanocrystallization simultaneously enhances both tensile strength and plasticity, addressing one of the long-standing challenges in metallic glass research. This work provides a processing strategy for cooling-driven microstructural design in metallic glasses, offering a pathway to bypass conventional annealing treatments while achieving enhanced mechanical performance.

Acta Materialia
University of Wisconsin–Madison (US), Seoul National University (KR), National University (SD)
National Research Foundation, Ministry of Trade, Industry and Energy, National Research Foundation of Korea, Ministry of Science and ICT, South Korea
Openalex Percentile: Top 20%
Metallic Glasses and Amorphous Alloys
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