2018
DOI: 10.1021/acs.analchem.8b01765
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Ionic Current Behaviors of Dual Nano- and Micropipettes

Abstract: Ionic current rectification (ICR) phenomena within dual glass pipettes are investigated for the first time. We demonstrate that the ionic flow presents different behaviors in dual nano- and micropipettes when the two channels are filled with the same electrolyte KCl and hung in air. Bare dual nanopipettes cannot rectify the ionic current because of their geometric symmetry, but the ICR can be directly observed based on bare dual micropipettes. The phenomena based on dual micropipettes could be explained by the… Show more

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Cited by 21 publications
(24 citation statements)
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“…However, the effect of gas phase on the ion transfer can hardly be probed based on such structure. Theta pipettes have previously been used to study ion mass transfer through a liquid–liquid interface. When the theta micropipette is exposed to the air, the ion mass transfer through the two barrels can be modulated by the gas phase. However, such ion mass transfer is unstable due to the uncontrollable evaporation of the meniscus solvent that cover both orifices of the theta micropipette.…”
mentioning
confidence: 99%
“…However, the effect of gas phase on the ion transfer can hardly be probed based on such structure. Theta pipettes have previously been used to study ion mass transfer through a liquid–liquid interface. When the theta micropipette is exposed to the air, the ion mass transfer through the two barrels can be modulated by the gas phase. However, such ion mass transfer is unstable due to the uncontrollable evaporation of the meniscus solvent that cover both orifices of the theta micropipette.…”
mentioning
confidence: 99%
“…Ion transport in a fluidic channel has been intensively studied for promising applications including energy harvesters, iontronics, artificial neurons, and single-molecule sensing. , It implements electric field-driven ion and mass transport in a confined space, wherein electrostatics and fluid dynamics reflect rich properties of the wall surface to induce pronounced ion selectivity and the associated unique ionic current characteristics that cannot be expected in bulk systems. According to this principle, nanofluidic devices demonstrated a variety of ion transport properties such as ionic current rectification (ICR) and negative differential resistance (NDR) , via geometric structure engineering, membrane material designs, , and molecular functionalizations , to provide high-density surface charge to the walls and increase the surface-to-volume ratio of fluidic channels. The surface effects were, however, known to be effective only in a small channel of sub-Debye length size because of screening of the electrostatic field at the wall by the electrolyte ions.…”
Section: Introductionmentioning
confidence: 99%
“…Ion transport in fluidic channels has been extensively studied for ionic electronics and energy harvest. Functional nanochannels with various ion transport properties have been reported, such as artificial ion channel, rectification, negative differential resistance, and even memristive switching . In general, surface charge effects play a central role on rendering the unique characteristics through the electrostatic interactions with mobile electrolyte ions in the sub-Debye length scale conduits with overlapped electric double layers. , This in turn predicts function-less fluidic devices with characteristic sizes much larger than a screening length, as the ion conductivity will largely be determined by the bulk properties.…”
Section: Introductionmentioning
confidence: 99%