Ion exchange selectivity (Mg2+, Ca2+ and K+) in hydrated Na-montmorillonite: insights from molecular dynamic simulations

被引:4
作者
Huang, Yufeng [1 ]
Zhang, Zhijun [1 ]
机构
[1] China Univ Min & Technol, Sch Chem & Environm Engn, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Na-montmorillonite; molecular simulation; electrolyte cation; ion exchange; CLAY-MINERALS; DIFFUSION; WATER; HYSTERESIS; DEPENDENCE; CATIONS; MECHANISM; BEHAVIOR; ALKALI; FORCE;
D O I
10.1080/08927022.2022.2152062
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The cation exchange selectivity in the Na-montmorillonite interlayer has been extensively studied as a part of the mechanism of the cation exchange reaction, which also provides an important insight into the inhibition of montmorillonite expansion by inorganic salts. While the variation of interlayer structure associated with interlayer Na+ and water molecules during the ion exchange process has less been explored, to determine the possibility of replacing interlayer Na+ ions by the ion exchange reaction, the present study focuses on the effects of the added electrolyte cation (Mg2+, Ca2+ and K+) on the structure properties, diffusion features and the number of surface hydrogen bonds in hydrated Na-montmorillonite at different hydration stages by using molecular dynamic (MD) simulations. The simulation results showed that Ca2+ has a better tendency to exchange Na+ ions at a high hydration degree, and K+ is easier to exchange Na+ at a low hydration degree. The lower mobility of interlayer species and the relativity large change in the number of hydrogen bonds with the addition of Mg2+ reflected its weak possibility of exchanging Na+ .
引用
收藏
页码:223 / 232
页数:10
相关论文
共 45 条
  • [1] Atomistic simulations of the swelling behaviour of Na-montmorillonite in mixed NaCl and CaCl2 solutions
    Akinwunmi, Bukunmi
    Kporha, Faith E. A.
    Hirvi, Janne T.
    Kasa, Seppo
    Pakkanen, Tapani A.
    [J]. CHEMICAL PHYSICS, 2020, 533
  • [2] Clay swelling - A challenge in the oilfield
    Anderson, R. L.
    Ratcliffe, I.
    Greenwell, H. C.
    Williams, P. A.
    Cliffe, S.
    Coveney, P. V.
    [J]. EARTH-SCIENCE REVIEWS, 2010, 98 (3-4) : 201 - 216
  • [3] Brindley G.W., 1980, CRYST STRUCT COMMUN, P125
  • [4] COMPUTER-SIMULATION OF INTERLAYER MOLECULAR-STRUCTURE IN SODIUM MONTMORILLONITE HYDRATES
    CHANG, FRC
    SKIPPER, NT
    SPOSITO, G
    [J]. LANGMUIR, 1995, 11 (07) : 2734 - 2741
  • [5] Molecular models of hydroxide, oxyhydroxide, and clay phases and the development of a general force field
    Cygan, RT
    Liang, JJ
    Kalinichev, AG
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (04) : 1255 - 1266
  • [6] Porous clays and pillared clays-based catalysts. Part 2: A review of the catalytic and molecular sieve applications
    Ding, Z
    Kloprogge, JT
    Frost, RL
    Lu, GQ
    Zhu, HY
    [J]. JOURNAL OF POROUS MATERIALS, 2001, 8 (04) : 273 - 293
  • [7] Evangelou V.P., 1998, ENV SOIL WATER CHEM
  • [8] FINK D. H., 1964, SOIL SCI SOC AMER PROC, V28, P747
  • [9] Molecular Dynamics Simulation of Diffusion and Electrical Conductivity in Montmorillonite Interlayers
    Greathouse, J. A.
    Cygan, R. T.
    Fredrich, J. T.
    Jerauld, G. R.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (03) : 1640 - 1649
  • [10] Why clays swell
    Hensen, EJM
    Smit, B
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (49) : 12664 - 12667