Literature DB >> 30247473

Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions.

Kentaro Doi1, Fumika Nito2, Ayako Yano3, Ryo Nagura2, Satoyuki Kawano4.   

Abstract

To drive electrohydrodynamic (EHD) flows in aqueous solutions, the separation of cation and anion transport pathways is essential because a directed electric body force has to be induced by ionic motions in liquid. On the other hand, positive and negative charges attract each other, and electroneutrality is maintained everywhere in equilibrium conditions. Furthermore, an increase in an applied voltage has to be suppressed to avoid water electrolysis, which causes the solutions to become unstable. Usually, EHD flows can be induced in non-aqueous solutions by applying extremely high voltages, such as tens of kV, to inject electrical charges. In this study, two methods are introduced to generate EHD flows induced by electrical charge separations in aqueous solutions, where two liquid phases are separated by an ion-exchange membrane. Due to a difference in the ionic mobility in the membrane, ion concentration polarization is induced between both sides of the membrane. In this study, we demonstrate two methods. (i) The relaxation of ion concentration gradients occurs via a flow channel that penetrates an ion-exchange membrane, where the transport of the slower species in the membrane selectively becomes dominant in the flow channel. This is a driving force to generate an EHD flow in the liquid. (ii) A long waiting time for the diffusion of ions passing through the ion-exchange membrane enables the generation of an ion-dragged flow by externally applying an electric field. Ions concentrated in a flow channel of a 1 x 1 mm2 cross-section determine the direction of the liquid flow, corresponding to the electrophoretic transport pathways. In both methods, the electric voltage difference required for an EHD flow generation is drastically reduced to near 2 V by rectifying the ion transport pathways.

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Year:  2018        PMID: 30247473      PMCID: PMC6235119          DOI: 10.3791/57820

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  19 in total

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Review 2.  Solid-state nanopores.

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3.  Principles and applications of nanofluidic transport.

Authors:  W Sparreboom; A van den Berg; J C T Eijkel
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4.  Ion transport in nanofluidic channels.

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5.  Electrohydrodynamic flow through a 1 mm(2) cross-section pore placed in an ion-exchange membrane.

Authors:  Kentaro Doi; Ayako Yano; Satoyuki Kawano
Journal:  J Phys Chem B       Date:  2014-12-18       Impact factor: 2.991

6.  Particle rotational trapping on a floating electrode by rotating induced-charge electroosmosis.

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7.  DNA manipulation and separation in sublithographic-scale nanowire array.

Authors:  Takao Yasui; Sakon Rahong; Koki Motoyama; Takeshi Yanagida; Qiong Wu; Noritada Kaji; Masaki Kanai; Kentaro Doi; Kazuki Nagashima; Manabu Tokeshi; Masateru Taniguchi; Satoyuki Kawano; Tomoji Kawai; Yoshinobu Baba
Journal:  ACS Nano       Date:  2013-03-21       Impact factor: 15.881

8.  Electroosmotic flow velocity measurements in a square microchannel.

Authors:  Shou-Shing Hsieh; Hung-Chun Lin; Chih-Yi Lin
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9.  Flexible particle flow-focusing in microchannel driven by droplet-directed induced-charge electroosmosis.

Authors:  Yukun Ren; Xianyu Liu; Weiyu Liu; Ye Tao; Yankai Jia; Likai Hou; Wenying Li; Hongyuan Jiang
Journal:  Electrophoresis       Date:  2017-11-29       Impact factor: 3.535

10.  Theoretical study of the transpore velocity control of single-stranded DNA.

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Journal:  Int J Mol Sci       Date:  2014-08-11       Impact factor: 5.923

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