中国物理B ›› 2026, Vol. 35 ›› Issue (8): 86101-086101.doi: 10.1088/1674-1056/ae1457

• • 上一篇    下一篇

Topological features of atomic packings and the relation to glass-forming ability in metallic glass-forming systems

Yufei He(何宇飞), Jiaqi Wu(吴佳琦), and Maozhi Li(李茂枝)†   

  1. School of Physics and Key Laboratory of Quantum State Construction and Manipulation (Ministry of Education), Renmin University of China, Beijing 100872, China
  • 收稿日期:2025-09-16 修回日期:2025-10-14 接受日期:2025-10-17 发布日期:2026-08-06
  • 通讯作者: Maozhi Li E-mail:maozhili@ruc.edu.cn
  • 基金资助:
    Computational resources were provided by the Physical Laboratory of High-Performance Computing at Renmin University of China. Project supported by the National Natural Science Foundation of China (Grant Nos. 52031016 and 12574220).

Topological features of atomic packings and the relation to glass-forming ability in metallic glass-forming systems

Yufei He(何宇飞), Jiaqi Wu(吴佳琦), and Maozhi Li(李茂枝)†   

  1. School of Physics and Key Laboratory of Quantum State Construction and Manipulation (Ministry of Education), Renmin University of China, Beijing 100872, China
  • Received:2025-09-16 Revised:2025-10-14 Accepted:2025-10-17 Published:2026-08-06
  • Contact: Maozhi Li E-mail:maozhili@ruc.edu.cn
  • Supported by:
    Computational resources were provided by the Physical Laboratory of High-Performance Computing at Renmin University of China. Project supported by the National Natural Science Foundation of China (Grant Nos. 52031016 and 12574220).

摘要: Molecular dynamics simulations were performed to study some model metallic glass-forming systems with distinct glass-forming ability (GFA), including monatomic metals and multicomponent alloys for understanding the physical origin of the GFA. Here the topological features of atomic packings in these systems were explored by employing the persistent homology (PH), a novel approach of computational algebraic topology to characterize the homology classes/Betti number and connection propensity of the densest packings. We found that the homology classes in all systems decrease with decreasing temperature, suggesting that the atomic packings generally become more and more heterogeneous during glass formation, but with different degrees. Moreover, we found that the connection propensity of the densest packings exhibits distinct evolution tendency in both multicomponent alloys and monatomic metals during cooling, and is consistent with the order of their GFA. This indicates that the connection propensity of the densest packings may be a general factor controlling the GFA of metallic glass-forming systems. Our findings demonstrate that the topological features of dense atomic packings in metallic glass-forming systems may be intrinsic in disordered structures and provide new insights into the structure-property relationship in glass-forming systems.

关键词: glass-forming ability, persistent homology, molecular dynamics simulation

Abstract: Molecular dynamics simulations were performed to study some model metallic glass-forming systems with distinct glass-forming ability (GFA), including monatomic metals and multicomponent alloys for understanding the physical origin of the GFA. Here the topological features of atomic packings in these systems were explored by employing the persistent homology (PH), a novel approach of computational algebraic topology to characterize the homology classes/Betti number and connection propensity of the densest packings. We found that the homology classes in all systems decrease with decreasing temperature, suggesting that the atomic packings generally become more and more heterogeneous during glass formation, but with different degrees. Moreover, we found that the connection propensity of the densest packings exhibits distinct evolution tendency in both multicomponent alloys and monatomic metals during cooling, and is consistent with the order of their GFA. This indicates that the connection propensity of the densest packings may be a general factor controlling the GFA of metallic glass-forming systems. Our findings demonstrate that the topological features of dense atomic packings in metallic glass-forming systems may be intrinsic in disordered structures and provide new insights into the structure-property relationship in glass-forming systems.

Key words: glass-forming ability, persistent homology, molecular dynamics simulation

中图分类号:  (Amorphous semiconductors, metals, and alloys)

  • 61.43.Dq
64.70.pe (Metallic glasses)