Applied Electric Field Effects on Diffusivity and Electrical Double-Layer Thickness

被引:12
作者
Masuduzzaman, Md [1 ]
Bakli, Chirodeep [2 ]
Barisik, Murat [3 ]
Kim, Bohung [1 ]
机构
[1] Univ Ulsan, Sch Mech Engn, Daehak Ro 93, Ulsan 680749, South Korea
[2] Indian Inst Technol Kharagpur, Sch Energy Sci & Engn, Kharagpur 721302, W Bengal, India
[3] Univ Tennessee, Dept Mech Engn, Chattanooga, TN 37403 USA
基金
新加坡国家研究基金会;
关键词
diffusivity; EDL thickness; electric field; stress tensor; viscosity; MOLECULAR-DYNAMICS; TRANSPORT; FLOWS; WATER; SIMULATION; VISCOSITY; PRESSURE;
D O I
10.1002/smll.202404397
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This study utilizes molecular dynamics (MD) simulations and continuum frameworks to explore electroosmotic flow (EOF) in nanoconfined aqueous electrolytes, offering a promising alternative to conventional micro-/nanofluidic systems. Although osmotic behavior in these environments is deeply linked to local fluid properties and interfacial dynamics between the fluid and electrolyte solutions, achieving a complete molecular-level understanding has remained challenging. The findings establish a linear relationship between electric field strength and fluid velocity, uncovering two distinct transport regimes separated by a critical threshold, with a markedly intensified flow in the second regime. It is demonstrated that rising electric field strengths significantly enhance water diffusion coefficients, supported by a detailed analysis of fluid hydration structures, the potential of mean force (PMF), and local stress tensors. Due to the applied electric field strength, the motion of ions and water accelerates, leading to the redistribution of ions and intensification of electrostatic forces. This expands the thickness of the electric double layer (EDL) and amplifies fluid diffusivity, thereby enhancing nanoscale fluid activity. These insights enhance the molecular-level understanding of EOF and define the stability of flow regimes, providing valuable guidelines for advancing nanofluidic technologies, such as drug delivery systems and lab-on-a-chip devices. This study explores electroosmotic flow (EOF) in nanoconfined aqueous electrolytes using molecular dynamics simulations and continuum frameworks. A linear relationship between electric field strength and fluid velocity is established, revealing two distinct transport regimes. The findings provide insights into the modulation of fluid properties by electric fields, advancing the understanding of EOF for nanofluidic applications. image
引用
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页数:15
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