Single-Particle Dynamics at the Intrinsic Surface of Aqueous Alkali Halide Solutions

被引:9
|
作者
Hantal, Gyoergy [1 ]
Kolafa, Jiri [2 ]
Sega, Marcello [3 ]
Jedlovszky, Pal [4 ]
机构
[1] Univ Nat Resources & Life Sci, Inst Phys & Mat Sci, A-1190 Vienna, Austria
[2] Univ Chem & Technol, Dept Phys Chem, CZ-16628 Prague, Czech Republic
[3] Forschungszentrum Julich, Helmholtz Inst Erlangen Nurnberg Renewable Energy, D-90429 Nurnberg, Germany
[4] Eszterhazy Karoly Univ, Dept Chem, H-3300 Eger, Hungary
来源
JOURNAL OF PHYSICAL CHEMISTRY B | 2021年 / 125卷 / 02期
关键词
AIR-LIQUID INTERFACES; FREE-WATER SURFACE; MOLECULAR-DYNAMICS; PHOTOELECTRON-SPECTROSCOPY; COMPUTER-SIMULATIONS; TENSION; IONS; SOLVATION; DIFFUSION; ANIONS;
D O I
10.1021/acs.jpcb.0c09989
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 distribution of ions in the proximity of the liquid-vapor interface of their aqueous solution has been the subject of an intense debate during the last decade. The effects of ionic polarizability have been one of its salient aspects. Much less has been said about the corresponding dynamical properties, which are substantially unexplored. Here, we investigate the single-particle dynamics at the liquid-vapor interface of several alkali halide solutions, using molecular dynamics simulations with polarizable and nonpolarizable force fields and intrinsic surface analysis. We analyze the diffusion coefficient, residence time, and velocity autocorrelation function of water and ions and investigate how these properties depend on the molecular layer where they reside. While anions are found in the first molecular layer for relatively long times, cations are only making quick excursions into it, thanks to thermal fluctuations. The in-layer residence time of ions and their molar fraction in the layer turned out to be linearly dependent on each other. We interpret this unexpected result using a simple two-state model. In addition, we found that, unlike water and other neat molecular liquids that show a different diffusion mechanism at the surface than in the bulk of their liquid phase, ions do not enjoy enhanced mobility in the surface layer of their aqueous solution. This result indicates that ions in the surface layer are shielded by their nearest water neighbors from being exposed to the vapor phase as much as possible. Such positions are available for the ions at the negatively curved troughs of the molecularly rugged liquid surface.
引用
收藏
页码:665 / 679
页数:15
相关论文
共 50 条
  • [21] SINGLE-PARTICLE DYNAMICS IN THE ANDERSON LATTICE
    FEDRO, AJ
    DUNLAP, BD
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1987, 26 : 463 - 464
  • [23] Hydrogen isotope fractionation in aqueous alkali halide solutions
    Kakiuchi, M
    ZEITSCHRIFT FUR NATURFORSCHUNG SECTION A-A JOURNAL OF PHYSICAL SCIENCES, 1997, 52 (11): : 811 - 820
  • [24] DYNAMICS OF SINGLE-PARTICLE NUCLEON MOTION
    ROZMEJ, P
    ARVIEU, R
    ACTA PHYSICA POLONICA B, 1994, 25 (3-4): : 759 - 763
  • [25] SINGLE-PARTICLE DYNAMICS IN SIMPLE LIQUIDS
    BALUCANI, U
    TORCINI, A
    STANGL, A
    MORKEL, C
    PHYSICA SCRIPTA, 1995, T57 : 13 - 17
  • [26] Particle-conserving dynamics on the single-particle level
    Schindler, T.
    Wittmann, R.
    Brader, J. M.
    PHYSICAL REVIEW E, 2019, 99 (01)
  • [27] Anisotropic single-particle dissipative particle dynamics model
    Deng, Mingge
    Pan, Wenxiao
    Karniadakis, George Em
    JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 336 : 481 - 491
  • [28] THE DYNAMICS OF SINGLE-PARTICLE IMPACT IN SOLID PARTICLE EROSION
    SUNDARARAJAN, G
    SHEWMON, PG
    JOURNAL OF METALS, 1981, 33 (09): : A61 - A62
  • [29] Dielectric constant and density of aqueous alkali halide solutions by molecular dynamics: A force field assessment
    Saric, Denis
    Kohns, Maximilian
    Vrabec, Jadran
    JOURNAL OF CHEMICAL PHYSICS, 2020, 152 (16):
  • [30] Thermal transport of alkali halide aqueous solutions: a non-equilibrium molecular dynamics investigation
    Bresme, Fernando
    Vasey, Evan
    MOLECULAR PHYSICS, 2024, 122 (21-22)