Toward Efficient Electrokinetic Energy Conversion with Topographic Modulation of Electrical Conduction

Fuente: arXiv
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Bibliographic Details
Main Authors: Dick, Austin, Iyyapareddy, Kushal, Hossain, Aktaruzzaman Al, Colosqui, Carlos E.
Format: Preprint
Published: 2025
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author Dick, Austin
Iyyapareddy, Kushal
Hossain, Aktaruzzaman Al
Colosqui, Carlos E.
author_facet Dick, Austin
Iyyapareddy, Kushal
Hossain, Aktaruzzaman Al
Colosqui, Carlos E.
contents This work presents experimental and theoretical analyses of electrokinetic flow in microchannels with glass and silica surfaces across a broad range of electrolyte concentrations (0.01 to 100 mM). We demonstrate simple but effective strategies for controlling electrical conduction by engineering nanoscale and microscale topographic features that directly modify the structure and extent of the electric double layer (EDL) and the interfacial ion conduction pathway. These tailored surface topographies modulate the overall electrical conductivity in slit microchannels through similar phenomena documented for nanochannels and nanopores due to the presence of liquid-filled nanoscale topographic features with high concentration of highly mobile protons. The findings of this work reveal that the interaction between tailored surface features and the EDL can substantially enhance energy conversion efficiency in microscale systems. These insights along with simple analytical models provide guidance for the rational design and optimization of scalable electrokinetic devices and are broadly relevant to numerous energy harvesting and charge-separation technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2505_08208
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Toward Efficient Electrokinetic Energy Conversion with Topographic Modulation of Electrical Conduction
Dick, Austin
Iyyapareddy, Kushal
Hossain, Aktaruzzaman Al
Colosqui, Carlos E.
Soft Condensed Matter
This work presents experimental and theoretical analyses of electrokinetic flow in microchannels with glass and silica surfaces across a broad range of electrolyte concentrations (0.01 to 100 mM). We demonstrate simple but effective strategies for controlling electrical conduction by engineering nanoscale and microscale topographic features that directly modify the structure and extent of the electric double layer (EDL) and the interfacial ion conduction pathway. These tailored surface topographies modulate the overall electrical conductivity in slit microchannels through similar phenomena documented for nanochannels and nanopores due to the presence of liquid-filled nanoscale topographic features with high concentration of highly mobile protons. The findings of this work reveal that the interaction between tailored surface features and the EDL can substantially enhance energy conversion efficiency in microscale systems. These insights along with simple analytical models provide guidance for the rational design and optimization of scalable electrokinetic devices and are broadly relevant to numerous energy harvesting and charge-separation technologies.
title Toward Efficient Electrokinetic Energy Conversion with Topographic Modulation of Electrical Conduction
topic Soft Condensed Matter
url https://arxiv.org/abs/2505.08208