Short-to-medium range atomic order of Zr-Cu metallic glasses under compression

被引:3
作者
Dziegielewski, Przemyslaw [1 ]
Evangelakis, Georgos [2 ]
Antonowicz, Jerzy [1 ]
机构
[1] Warsaw Univ Technol, Fac Phys, Ul Koszykowa 75, PL-00662 Warsaw, Poland
[2] Univ Ioannina, Dept Phys, Ioannina 45110, Greece
关键词
Metallic Glasses; High-pressure; Atomic structure; Short-range order; Topology; Molecular dynamics; pair contraction;
D O I
10.1016/j.commatsci.2022.111345
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Metallic glasses are amorphous solids, usually alloys, with liquid-like atomic structure involving short-range order characterized by clusters of atoms and medium-range order - a spatial arrangement of those clusters. Amorphous metals lack the translational symmetry of crystals, yet their atomic packing density is nearly as high as in crystalline materials. The packing density of metallic glasses can be further enhanced by external pressure, which forces the disordered structure to accommodate the load. In this work, we employ molecular dynamics simulations to follow variations of short-to-medium-range order of three binary Zr-Cu metallic glasses during hydrostatic compression from 0 to 100 GPa. Our study confirms the previously reported unusual contraction of Zr-Zr pairs. We suggest that the effect is related to the theoretically predicted step change of the electronic configuration of Zr atoms under compression. A common feature of the investigated systems is an increasing contribution of icosahedral order around Cu atoms which is accomplished by preferential straining of the mechanically soft Zr-Zr bonds. Our results reveal structural similarities of different alloys in the high-pressure regime and show that their topological short-to-medium-range order becomes composition-independent under compression. We conclude that the topology of short-to-medium-range order in Zr-Cu MGs under compression exhibits a universal, composition-independent character.
引用
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页数:8
相关论文
共 52 条
[31]   Elastic Moduli Inheritance and the Weakest Link in Bulk Metallic Glasses [J].
Ma, D. ;
Stoica, A. D. ;
Wang, X. -L. ;
Lu, Z. P. ;
Clausen, B. ;
Brown, D. W. .
PHYSICAL REVIEW LETTERS, 2012, 108 (08)
[32]   Structural behavior of CuxZr100-x metallic glass (x=35-70) [J].
Mattern, N. ;
Schoeps, A. ;
Kuehn, U. ;
Acker, J. ;
Khvostikova, O. ;
Eckert, J. .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 2008, 354 (10-11) :1054-1060
[33]   A structural model for metallic glasses [J].
Miracle, DB .
NATURE MATERIALS, 2004, 3 (10) :697-702
[34]   Isomechanical groups in bulk metallic glasses [J].
Plummer, J. D. ;
Todd, I. .
PHILOSOPHICAL MAGAZINE, 2012, 92 (23) :2894-2910
[35]   Measuring strain distributions in amorphous materials [J].
Poulsen, HF ;
Wert, JA ;
Neuefeind, J ;
Honkimäki, V ;
Daymond, M .
NATURE MATERIALS, 2005, 4 (01) :33-36
[36]   Relating atomic energy, radius and electronegativity through compression [J].
Rahm, Martin ;
Erhart, Paul ;
Cammi, Roberto .
CHEMICAL SCIENCE, 2021, 12 (07) :2397-2403
[37]   Squeezing All Elements in the Periodic Table: Electron Configuration and Electronegativity of the Atoms under Compression [J].
Rahm, Martin ;
Cammi, Roberto ;
Ashcroft, N. W. ;
Hoffmann, Roald .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2019, 141 (26) :10253-10271
[38]   Evidence of icosahedral short-range order in Zr70Cu30 and Zr70Cu29Pd1 metallic glasses [J].
Saksl, K ;
Franz, H ;
Jóvári, P ;
Klementiev, K ;
Welter, E ;
Ehnes, A ;
Saida, J ;
Inoue, A ;
Jiang, JZ .
APPLIED PHYSICS LETTERS, 2003, 83 (19) :3924-3926
[39]   The structural evolution and abnormal bonding ways of the Zr80Pt20 metallic liquid during rapid solidification under high pressure [J].
Sengul, S. ;
Celtek, M. ;
Domekeli, U. .
COMPUTATIONAL MATERIALS SCIENCE, 2020, 172
[40]  
Sheng, COMMUNICATION