TY - JOUR
T1 - Stability criteria of Aluminum lattice from first-principles
AU - Zhang, Lin
AU - Wang, Tianle
AU - Liu, Feng
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2025/1/1
Y1 - 2025/1/1
N2 - The stability of the Aluminum (Al) lattice fundamentally determines the properties of pure Al and its alloys, making it crucial for high-pressure research and alloy development. Through first-principles calculations, we investigated Al lattice behavior under general stress–strain conditions to establish comprehensive stability criteria under large strains. Our analysis revealed three hydrostatic lines representing fcc-Al, bcc-Al, and fct-Al phases under high compressive strain. Within 0-600 GPa, we calibrated two lattice stability criteria with corresponding instability lines, each characterizing a cubic-to-tetragonal transformation. At 110 GPa, bcc-Al transitions from a transitional to a stable phase, which explains the experimental observation of bcc-Al under high-pressure conditions. The relationship between lattice instability and hydrostatic lines generates a novel phase diagram revealing multiple-phase coexistence. These stability criteria govern various structural transformations of fcc-Al, including dislocation, twinning, and stacking faults. This methodological framework provides insights for lattice stability analysis across diverse metallic systems and alloy industries.
AB - The stability of the Aluminum (Al) lattice fundamentally determines the properties of pure Al and its alloys, making it crucial for high-pressure research and alloy development. Through first-principles calculations, we investigated Al lattice behavior under general stress–strain conditions to establish comprehensive stability criteria under large strains. Our analysis revealed three hydrostatic lines representing fcc-Al, bcc-Al, and fct-Al phases under high compressive strain. Within 0-600 GPa, we calibrated two lattice stability criteria with corresponding instability lines, each characterizing a cubic-to-tetragonal transformation. At 110 GPa, bcc-Al transitions from a transitional to a stable phase, which explains the experimental observation of bcc-Al under high-pressure conditions. The relationship between lattice instability and hydrostatic lines generates a novel phase diagram revealing multiple-phase coexistence. These stability criteria govern various structural transformations of fcc-Al, including dislocation, twinning, and stacking faults. This methodological framework provides insights for lattice stability analysis across diverse metallic systems and alloy industries.
KW - Alloy design
KW - Aluminum
KW - First-principles calculations
KW - High pressure
KW - Lattice instability
UR - http://www.scopus.com/inward/record.url?scp=85212589631&partnerID=8YFLogxK
U2 - 10.1016/j.jmrt.2024.12.092
DO - 10.1016/j.jmrt.2024.12.092
M3 - 文章
AN - SCOPUS:85212589631
SN - 2238-7854
VL - 34
SP - 1144
EP - 1157
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -