Study of the Molecular Level Mechanism of Nanoscale Alternating Current Electrohydrodynamic Flow

Fuente: arXiv
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Auteurs principaux: Alosious, Sobin, Antaw, Fiach, Trau, Matt, Tee, Shern R., Searles, Debra J.
Format: Preprint
Publié: 2025
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author Alosious, Sobin
Antaw, Fiach
Trau, Matt
Tee, Shern R.
Searles, Debra J.
author_facet Alosious, Sobin
Antaw, Fiach
Trau, Matt
Tee, Shern R.
Searles, Debra J.
contents This study investigates the molecular-level mechanism of Alternating Current Electrohydrodynamic (AC-EHD) flow in nanopores under high-frequency conditions, using molecular dynamics simulations. A gold-NaCl system with symmetric and asymmetric electrode configurations is used to analyze the flow patterns under high-frequency AC potentials. Our findings reveal localized heat generation near the electrode leading to a steep temperature gradient. An order parameter analysis indicates that the heat generation is due to the periodic change in the alignment of water molecules under AC potentials. At these high frequencies the influence of Na$^+$ and Cl$^-$ ions are negligible. The heat generation and temperature gradient are found to increase with the applied AC frequency. Three different electrode configurations were studied by varying the size and distance between the electrodes. A net directional flow develops in the asymmetric electrode structures. A possible mechanism for this is proposed by analyzing the flow patterns using velocity and temperature profiles, order parameters, streamline plots and mean square displacements. Different effects on the fluid were identified including those associated with temperature gradients, temperature-dependent fluid properties, and non-uniform electric fields. The asymmetric electrode structure created an imbalance in these effects and generated a net directional flow. These findings suggest the existence of a form of nanoscale AC-EHD flow that operates in a frequency regime above that of conventional electroosmotic and electrothermal mechanisms and that, unlike these mechanisms, occurs independently of ionic concentration. Thereby this work provides insights for optimizing AC-EHD flow in nanoscale systems where precise fluid manipulation is critical.
format Preprint
id arxiv_https___arxiv_org_abs_2510_21754
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Study of the Molecular Level Mechanism of Nanoscale Alternating Current Electrohydrodynamic Flow
Alosious, Sobin
Antaw, Fiach
Trau, Matt
Tee, Shern R.
Searles, Debra J.
Soft Condensed Matter
Mesoscale and Nanoscale Physics
Computational Physics
Fluid Dynamics
This study investigates the molecular-level mechanism of Alternating Current Electrohydrodynamic (AC-EHD) flow in nanopores under high-frequency conditions, using molecular dynamics simulations. A gold-NaCl system with symmetric and asymmetric electrode configurations is used to analyze the flow patterns under high-frequency AC potentials. Our findings reveal localized heat generation near the electrode leading to a steep temperature gradient. An order parameter analysis indicates that the heat generation is due to the periodic change in the alignment of water molecules under AC potentials. At these high frequencies the influence of Na$^+$ and Cl$^-$ ions are negligible. The heat generation and temperature gradient are found to increase with the applied AC frequency. Three different electrode configurations were studied by varying the size and distance between the electrodes. A net directional flow develops in the asymmetric electrode structures. A possible mechanism for this is proposed by analyzing the flow patterns using velocity and temperature profiles, order parameters, streamline plots and mean square displacements. Different effects on the fluid were identified including those associated with temperature gradients, temperature-dependent fluid properties, and non-uniform electric fields. The asymmetric electrode structure created an imbalance in these effects and generated a net directional flow. These findings suggest the existence of a form of nanoscale AC-EHD flow that operates in a frequency regime above that of conventional electroosmotic and electrothermal mechanisms and that, unlike these mechanisms, occurs independently of ionic concentration. Thereby this work provides insights for optimizing AC-EHD flow in nanoscale systems where precise fluid manipulation is critical.
title Study of the Molecular Level Mechanism of Nanoscale Alternating Current Electrohydrodynamic Flow
topic Soft Condensed Matter
Mesoscale and Nanoscale Physics
Computational Physics
Fluid Dynamics
url https://arxiv.org/abs/2510.21754