4.6 Review

Recent Developments in Ultrafine Shape Memory Alloys Using Amorphous Precursors

Journal

MATERIALS
Volume 16, Issue 23, Pages -

Publisher

MDPI
DOI: 10.3390/ma16237327

Keywords

amorphous precursor; shape memory alloy; crystallization kinetics; shape memory effect; superelasticity

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In this review, the recent advances in developing ultrafine shape memory alloys using amorphous metallic materials are systematically reviewed. The paper discusses the range of fabrication methods, the crystallization mechanism, and the phase stability that affect the shape memory effect and superelastic behavior. A methodological framework for developing high-performance ultrafine shape memory alloys is also suggested.
In this review, we systematically reviewed the recent advances in the development of ultrafine shape memory alloys with unique shape memory effects and superelastic behavior using amorphous metallic materials. Its scientific contribution involves defining and expanding the range of fabrication methods for single-phase ultrafine/nanocrystalline alloys with multicomponent systems. In multicomponent amorphous alloys, the crystallization mechanism depends on the alloy composition and is a selectable factor in the alloy designing method, considering the thermodynamic and physical parameters of constituent elements. The crystallization kinetics can be controlled by modulating the annealing condition in a supercooled liquid state with consideration of the crystalline temperature of the amorphous alloys. The phase stability of austenite and martensite phases in ultrafine shape memory alloys developed from amorphous precursors is determined according to alloy composition and grain size, which strongly influence the shape memory effect and superelastic behavior. A methodological framework is subsequently suggested to develop the ultrafine shape memory alloys based on the systematic alloy designing method, which can be considered an important strategy for developing novel ultrafine/nanocrystalline shape memory alloys with excellent shape memory and superelastic effects.

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