Vacancy Engineering in Metals and Alloys

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Raguraman, Sreenivas, Pulido, Homero Reyes, Hutchinson, Christopher, Devaraj, Arun, Weber, Marc H., Falk, Michael L., Weihs, Timothy P.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908680642887680
author Raguraman, Sreenivas
Pulido, Homero Reyes
Hutchinson, Christopher
Devaraj, Arun
Weber, Marc H.
Falk, Michael L.
Weihs, Timothy P.
author_facet Raguraman, Sreenivas
Pulido, Homero Reyes
Hutchinson, Christopher
Devaraj, Arun
Weber, Marc H.
Falk, Michael L.
Weihs, Timothy P.
contents Vacancy engineering, the intentional control of atomic-scale vacancies in metals and alloys, is emerging as a powerful yet underexplored strategy for tailoring microstructures and optimizing performance across diverse applications. By enabling excess vacancy populations through quenching, severe deformation, thermomechanical treatments, or additive manufacturing, new microstructures can be obtained that achieve unique combinations of strength, ductility, fatigue life, corrosion resistance, and conductivity. Vacancies are distinct among lattice defects: they are non-conserved entities essential for solute diffusion, yet variably coupled to solutes, dislocations, and phase boundaries. They can accelerate transformations such as nucleation and precipitation or retard kinetics when trapped in clusters, and their transient trapping and release can drive microstructural evolution across time and length scales. This Review synthesizes recent advances in generating, modeling, and characterizing vacancies, highlighting their role in diffusion, precipitation, and phase stability. Case studies in lightweight, high-temperature, fatigue-resistant, electrical, and biomedical materials demonstrate the broad potential of vacancy control. We conclude by emphasizing the opportunity for the metallurgical community to fully exploit excess vacancies as controllable, design-relevant defects that enable new pathways for microstructure and property optimization in next-generation alloys.
format Preprint
id arxiv_https___arxiv_org_abs_2511_20706
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Vacancy Engineering in Metals and Alloys
Raguraman, Sreenivas
Pulido, Homero Reyes
Hutchinson, Christopher
Devaraj, Arun
Weber, Marc H.
Falk, Michael L.
Weihs, Timothy P.
Materials Science
Vacancy engineering, the intentional control of atomic-scale vacancies in metals and alloys, is emerging as a powerful yet underexplored strategy for tailoring microstructures and optimizing performance across diverse applications. By enabling excess vacancy populations through quenching, severe deformation, thermomechanical treatments, or additive manufacturing, new microstructures can be obtained that achieve unique combinations of strength, ductility, fatigue life, corrosion resistance, and conductivity. Vacancies are distinct among lattice defects: they are non-conserved entities essential for solute diffusion, yet variably coupled to solutes, dislocations, and phase boundaries. They can accelerate transformations such as nucleation and precipitation or retard kinetics when trapped in clusters, and their transient trapping and release can drive microstructural evolution across time and length scales. This Review synthesizes recent advances in generating, modeling, and characterizing vacancies, highlighting their role in diffusion, precipitation, and phase stability. Case studies in lightweight, high-temperature, fatigue-resistant, electrical, and biomedical materials demonstrate the broad potential of vacancy control. We conclude by emphasizing the opportunity for the metallurgical community to fully exploit excess vacancies as controllable, design-relevant defects that enable new pathways for microstructure and property optimization in next-generation alloys.
title Vacancy Engineering in Metals and Alloys
topic Materials Science
url https://arxiv.org/abs/2511.20706