Hou Dongshuai, Li Tao
Qingdao University of Technology, Qingdao, China.
Phys Chem Chem Phys. 2018 Jan 24;20(4):2373-2387. doi: 10.1039/c7cp06985e.
The transport and adsorption behavior of ions and water in nanometer pores is influenced by the composition of the substrate. In this paper, to understand the effect of Al species on the properties of confined nanofluids, molecular dynamics is utilized to study the structure, dynamics and interfacial adsorption behavior of NaCl solution confined in the gel pores of C-S-H and C-A-S-H. The bridging silicate tetrahedron substituted by the aluminate species enhances the hydrophilic properties of C-S-H gel. As compared with water on the C-S-H surface, the water layered packing is densified and the magnitude of dipole moment is enlarged for water located in the vicinity of the C-A-S-H surface. This is mainly attributed to the increasing number of H bonds contributed by oxygen atoms in the aluminate silicate chains sharing more negativity. Furthermore, C-A-S-H gel immobilizes more sodium and chloride ions on the surface than C-S-H. Sodium ions can coordinate with about two to three oxygen atoms in the aluminate tetrahedron tessellated in the narrow vacancy of the silicate channel, forming inner adsorbed species. Weak interactions between Cl and the substrate are due to the few ionic pairs between Cl ions and surface-accumulated Na ions. Due to the strong Na-Os binding on the C-A-S-H surface, the diffusion coefficient of the Na ions confined in the nanometer pores is reduced by 50% and the hydration time for the Na ions associated with surrounding water is increased by 40% as compared with bulk solution.
纳米孔中离子和水的传输与吸附行为受基底组成的影响。本文为了解铝物种对受限纳米流体性质的影响,利用分子动力学研究了限制在C-S-H和C-A-S-H凝胶孔中的NaCl溶液的结构、动力学和界面吸附行为。被铝酸盐物种取代的桥连硅酸盐四面体增强了C-S-H凝胶的亲水性。与C-S-H表面的水相比,位于C-A-S-H表面附近的水的层状堆积更致密,偶极矩大小增大。这主要归因于铝硅酸盐链中氧原子贡献的氢键数量增加,这些氧原子共享更多负电荷。此外,C-A-S-H凝胶比C-S-H在表面固定更多的钠离子和氯离子。钠离子可以与镶嵌在硅酸盐通道狭窄空位中的铝酸盐四面体中的约两到三个氧原子配位,形成内吸附物种。Cl与基底之间的弱相互作用是由于Cl离子与表面积累的Na离子之间的离子对较少。由于C-A-S-H表面上Na-O键很强,与本体溶液相比,限制在纳米孔中的Na离子的扩散系数降低了50%,与周围水相关的Na离子的水合时间增加了40%。