Yang Yuankai, Zhang Xudong, Tian Zhiguo, Deissmann Guido, Bosbach Dirk, Liang Peng, Wang Moran
Department of Engineering Mechanics, Tsinghua University, 100084 Beijing, China.
School of Environment, Tsinghua University, 100084 Beijing, China.
J Colloid Interface Sci. 2022 Aug;619:331-338. doi: 10.1016/j.jcis.2022.03.077. Epub 2022 Mar 21.
Understanding of thermal effects on ion transport in porous media is very important for environmental applications. The movement of ions along a temperature gradient is named thermophoresis or thermodiffusion. In nanoporous media, where the interaction of ions with solid-liquid interfaces has a significant influence on their migration, the theoretical understanding of thermodiffusion is still incomplete. Herein, we present experimental results for the thermodiffusion of cations in saturated nanoporous silica by the through-diffusion method. Both the experimental data and theoretical analysis indicate that the temperature-induced polarization of surface charges strongly influences ionic transport. Stated simply, the electric field in a liquid electrolyte confined in nanopores changes when the applied temperature gradients are altered, thereby affecting the motion of the nanoconfined ionic species. By applying an external temperature field, the gradient of the surface charge density leads to the charged aqueous species exhibiting strong temperature gradient-dependent electrophoretic mobility. When the thickness of the electrical double layer is comparable to the size of the nanopores, the theory used herein indicates that this kind of nonisothermal ionic mobility is up to one order of magnitude larger than classical thermophoretic mobility. This study improves the understanding of the underlying mechanisms that govern the transport of ions in nanoporous media, which could set the stage for diffusional metamaterials induced by specific thermal fields.
了解热对多孔介质中离子传输的影响对于环境应用非常重要。离子沿温度梯度的移动被称为热泳或热扩散。在纳米多孔介质中,离子与固液界面的相互作用对其迁移有显著影响,目前对热扩散的理论理解仍不完整。在此,我们通过贯穿扩散法给出了饱和纳米多孔二氧化硅中阳离子热扩散的实验结果。实验数据和理论分析均表明,温度诱导的表面电荷极化对离子传输有强烈影响。简单来说,当施加的温度梯度改变时,纳米孔中受限液体电解质中的电场会发生变化,从而影响纳米受限离子物种的运动。通过施加外部温度场,表面电荷密度梯度导致带电水相物种表现出强烈的温度梯度依赖性电泳迁移率。当双电层厚度与纳米孔尺寸相当时,本文所采用的理论表明,这种非等温离子迁移率比经典热泳迁移率大一个数量级。这项研究增进了对纳米多孔介质中离子传输基本机制的理解,这可能为特定热场诱导的扩散超材料奠定基础。