Geochemistry Department, Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.
Environ Sci Technol. 2010 Mar 15;44(6):2085-91. doi: 10.1021/es903645a.
In this paper, we address the manner in which the continuum-scale diffusive properties of smectite-rich porous media arise from their molecular- and pore-scale features. Our starting point is a successful model of the continuum-scale apparent diffusion coefficient for water tracers and cations, which decomposes it as a sum of pore-scale terms describing diffusion in macropore and interlayer "compartments." We then apply molecular dynamics (MD) simulations to determine molecular-scale diffusion coefficients D(interlayer) of water tracers and representative cations (Na(+), Cs(+), Sr(2+)) in Na-smectite interlayers. We find that a remarkably simple expression relates D(interlayer) to the pore-scale parameter δ(nanopore) ≤ 1, a constrictivity factor that accounts for the lower mobility in interlayers as compared to macropores: δ(nanopore) = D(interlayer)/D(0), where D(0) is the diffusion coefficient in bulk liquid water. Using this scaling expression, we can accurately predict the apparent diffusion coefficients of tracers H(2)0, Na(+), Sr(2+), and Cs(+) in compacted Na-smectite-rich materials.
本文探讨了富蒙脱石多孔介质的连续体尺度扩散特性如何源于其分子和孔隙尺度的特征。我们的出发点是一个成功的水示踪剂和阳离子连续体表观扩散系数模型,它将其分解为描述大孔和层间“隔室”中扩散的孔隙尺度项的和。然后,我们应用分子动力学(MD)模拟来确定水示踪剂和代表性阳离子(Na(+)、Cs(+)、Sr(2+))在 Na-蒙脱石层间的分子尺度扩散系数 D(interlayer)。我们发现,一个非常简单的表达式将 D(interlayer)与孔隙尺度参数 δ(nanopore) ≤ 1 相关联,该参数是一个限制因子,它反映了与大孔相比层间较低的迁移率:δ(nanopore) = D(interlayer)/D(0),其中 D(0)是在 bulk liquid water 中的扩散系数。使用这种标度表达式,我们可以准确预测在压实的富蒙脱石材料中示踪剂 H(2)0、Na(+)、Sr(2+)和 Cs(+)的表观扩散系数。