Stress field modification near linear complexions increases the effective obstacle size and strengthening effect

Fuente: arXiv
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Main Authors: Zhang, Zhengyu, Gianola, Daniel S., Rupert, Timothy J.
Format: Preprint
Published: 2026
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_version_ 1866910129012604928
author Zhang, Zhengyu
Gianola, Daniel S.
Rupert, Timothy J.
author_facet Zhang, Zhengyu
Gianola, Daniel S.
Rupert, Timothy J.
contents Linear complexions are stable defect states that form along dislocations and recent experiments have demonstrated strengthening effects exceeding classical precipitation hardening predictions, motivating a detailed study of nanoscale strengthening mechanisms. Here, molecular dynamics simulations in Al-Cu and Ni-Al face-centered cubic alloys are used to demonstrate distinct plasticity mechanisms associated with linear complexions. Both nanoparticle array and platelet array complexions exhibit appreciable strengthening. In addition to direct interactions with the particles, stress field modification in nearby regions can restrict dislocation motion as well. Finally, the relative particle-dislocation orientation is found to have a large effect, with the strongest resistance observed when the dislocation stress field aligns with the original complexion nucleation condition. As a whole, these findings provide mechanistic insight into the strengthening observed experimentally and establish design principles for linear complexion-induced strengthening in structural alloys.
format Preprint
id arxiv_https___arxiv_org_abs_2604_12730
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Stress field modification near linear complexions increases the effective obstacle size and strengthening effect
Zhang, Zhengyu
Gianola, Daniel S.
Rupert, Timothy J.
Materials Science
Linear complexions are stable defect states that form along dislocations and recent experiments have demonstrated strengthening effects exceeding classical precipitation hardening predictions, motivating a detailed study of nanoscale strengthening mechanisms. Here, molecular dynamics simulations in Al-Cu and Ni-Al face-centered cubic alloys are used to demonstrate distinct plasticity mechanisms associated with linear complexions. Both nanoparticle array and platelet array complexions exhibit appreciable strengthening. In addition to direct interactions with the particles, stress field modification in nearby regions can restrict dislocation motion as well. Finally, the relative particle-dislocation orientation is found to have a large effect, with the strongest resistance observed when the dislocation stress field aligns with the original complexion nucleation condition. As a whole, these findings provide mechanistic insight into the strengthening observed experimentally and establish design principles for linear complexion-induced strengthening in structural alloys.
title Stress field modification near linear complexions increases the effective obstacle size and strengthening effect
topic Materials Science
url https://arxiv.org/abs/2604.12730