Diffusion mechanism and dependence of diffusion on sodium silicate compositions

被引:2
|
作者
Nguyen Thi Thanh Ha [1 ]
Nguyen Thi Trang [1 ]
Hoang Viet Hung [1 ]
Tran Thuy Duong [1 ]
Pham Khac Hung [1 ]
机构
[1] Hanoi Univ Sci & Technol, 1 Dai Co Viet, Hanoi, Vietnam
来源
EUROPEAN PHYSICAL JOURNAL B | 2020年 / 93卷 / 07期
关键词
Computational Methods; MOLECULAR-DYNAMICS SIMULATION; AMORPHOUS SILICA; GLASSES; SCATTERING; TRANSPORT; OXYGEN; RAMAN; MELT;
D O I
10.1140/epjb/e2020-10116-4
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
The distribution of sodium and diffusion mechanism in sodium-silicate melt with various compositions are investigated via molecular dynamics simulation. The microstructure and dynamical characteristic have been studied with the help of Voronoi polyhedron, simplex and Si-O subnet, oxygen-cluster. The simulation results reveal that Na atoms tend to be in the O polyhedrons and not in Si ones. Moreover, the Na atoms are mainly located in non-bridging oxygen (NBO) and free oxygen (FO) polyhedrons. The Voronoi volume of bridging oxygen (BO) or NBO weakly depends on the number of Na located in polyhedron which indicates the strong Si-O bond compared to Na-O bond. The structure of sodium silicate melt consists of two separate regions: the Na-poor regions of Si-BO subnets and a Na-rich region of NBO-FO cluster. The density of sodium in the NBO-FO cluster is by 3-6 times larger than the one of Si-O subnets. This largest NBO-FO cluster represents a diffusion channel for sodium in sodium-silicate. Furthermore, we find that each BO polyhedron contains 0 or 1 Na atom meanwhile each NBO polyhedron contains 1 or 2 Na atoms. Thereby, the BO and NBO polyhedron contains 1 and 2 sites, respectively. The energy for Na atom located in BO site is larger than that in NBO site. The transition energy for Na atom moving from present site to neighboring NBO site is smaller than that to neighboring BO site. So, Na atoms move frequently to neighboring polyhedrons of NBO, and rarely to the BO ones.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] Diffusion mechanism in the sodium-ion battery material sodium cobaltate
    T. J. Willis
    D. G. Porter
    D. J. Voneshen
    S. Uthayakumar
    F. Demmel
    M. J. Gutmann
    M. Roger
    K. Refson
    J. P. Goff
    Scientific Reports, 8
  • [42] MICROSCOPIC MECHANISM OF DIFFUSION IN SODIUM BETA-ALUMINA
    WOLF, D
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1979, 24 (03): : 351 - 351
  • [43] SELF-DIFFUSION MECHANISM IN SOLID SODIUM BY NMR
    BRUNGER, G
    KANERT, O
    WOLF, D
    PHYSICAL REVIEW B, 1980, 22 (09) : 4247 - 4257
  • [44] Diffusion mechanism in the sodiumion battery material sodium cobaltate
    Willis, T. J.
    Porter, D. G.
    Voneshen, D. J.
    Uthayakumar, S.
    Demmel, F.
    Gutmann, M. J.
    Roger, M.
    Refson, K.
    Goff, J. P.
    SCIENTIFIC REPORTS, 2018, 8
  • [45] Pressure and temperature dependence of self-diffusion in solids: Sodium
    Kuchhal, P
    Dass, N
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1999, 214 (01): : 3 - 9
  • [46] DIFFUSION OF HCL IN COMPOSITIONS WITH LIGNOSULFONATE
    VEDEREVSKII, YL
    ORLOV, MS
    BAKUROV, VG
    COLLOID JOURNAL OF THE RUSSIAN ACADEMY OF SCIENCES, 1992, 54 (04): : 451 - 454
  • [47] Diffusion of halogens in silicate melts
    Wasik, A
    Courtial, P
    Dingwell, DB
    LITHOS, 2004, 73 (1-2) : S118 - S118
  • [48] Silicon diffusion in silicate minerals
    Bejina, F
    Jaoul, O
    EARTH AND PLANETARY SCIENCE LETTERS, 1997, 153 (3-4) : 229 - 238
  • [49] Silicon diffusion in silicate minerals
    Earth Planet Sci Lett, 3 (229):
  • [50] LITHIUM DIFFUSION IN SILICATE MELTS
    CUNNINGHAM, GJ
    HENDERSON, P
    LOWRY, RK
    NOLAN, J
    REED, SJB
    LONG, JVP
    EARTH AND PLANETARY SCIENCE LETTERS, 1983, 65 (01) : 203 - 205