从分子动力学模拟中洞察C-S-H凝胶孔中的离子扩散:空间分布、能量势垒和结构描述符。

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL
Weiqiang Chen, Kai Gong
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引用次数: 0

摘要

了解纳米环境中的输运行为对许多自然和工程系统(包括胶凝材料)至关重要,但其分子水平机制仍知之甚少。在这里,分子动力学(MD)模拟研究了Na+, Cl-和水在4nm的钙硅酸盐水合物(C-S-H)孔道内在300至360 K温度范围内的扩散。空间分辨分析表明,固液界面附近的扩散系数受到强烈抑制,并逐渐向孔隙中心恢复。Arrhenius分析进一步量化了活化能势垒和固有迁移率在孔隙通道上的空间变化,显示出明显的约束效应。空间解析的结构分析揭示了随着距离孔隙表面的增加,从结构控制到水动力控制的输运机制的机制转变。引入了一种结构描述符,总配位强度(TCS),在界面约1nm内提供了局部液体结构和分子迁移率之间的预测联系。在~ 1 nm之外,受Darcy-Brinkman框架启发的经验模型很好地捕获了抑制的扩散率。据我们所知,这是第一个全面解决胶凝纳米孔内输运、热动力学和结构的空间异质性的MD研究。这些发现加深了对纳米尺度输运现象的基本理解,并表明调整胶凝凝胶的纳米通道结构和界面化学,如表面配位环境、孔径分布和吸附位点,可能为抑制离子进入和提高水泥基材料的耐久性提供了一种有前途的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights into Ionic Diffusion in C-S-H Gel Pore from Molecular Dynamics Simulations: Spatial Distributions, Energy Barriers, and Structural Descriptor.

Understanding transport behavior in nanoconfined environments is critical to many natural and engineering systems, including cementitious materials, yet its molecular-level mechanisms remain poorly understood. Here, molecular dynamics (MD) simulations were used to investigate Na+, Cl-, and water diffusion inside a 4 nm calcium-silicate-hydrate (C-S-H) pore channel over temperatures ranging from 300 to 360 K. Spatially resolved analysis revealed strong suppression of diffusivity near the solid-liquid interface and gradual recovery toward the pore center. Arrhenius analysis further quantified the spatial variation of activation energy barriers and intrinsic mobilities across the pore channel, showing distinct confinement effects. The spatially resolved structural analysis uncovers a mechanistic transition from structure-controlled to hydrodynamics-controlled transport regimes with increasing distance from the pore surface. A structural descriptor, total coordination strength (TCS), was introduced, providing a predictive link between local liquid structure and molecular mobility within ∼1 nm of the interface. Beyond ∼1 nm, suppressed diffusivities were well captured by an empirical model inspired by the Darcy-Brinkman framework. To the best of our knowledge, this is the first MD study to comprehensively resolve the spatial heterogeneity of transport, thermal kinetics, and structure within cementitious nanopores. These findings deepen the fundamental understanding of nanoscale transport phenomena and suggest that tailoring the nanochannel structure and interfacial chemistry of cementitious gels, e.g., surface coordination environments, pore size distributions, and adsorption sites, may offer a promising strategy to suppress ionic ingress and enhance the durability of cement-based materials.

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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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