2020
DOI: 10.1021/acsami.0c15538
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Quasi-Stable Salt Gradient and Resistive Switching in Solid-State Nanopores

Abstract: Understanding and control of ion transport in a fluidic channel is of crucial importance for iontronics. The present study reports on quasi-stable ionic current characteristics in a SiNx nanopore under a salinity gradient. An intriguing interplay between electro-osmotic flow and local ion density distributions in a solid-state pore is found to induce highly asymmetric ion transport to negative differential resistance behavior under a 100-fold difference in the cross-membrane salt concentrations. Meanwhile, a s… Show more

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Cited by 17 publications
(41 citation statements)
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“…Enrichment and depletion of ions, that is, concentration polarization (CP), under external electrical potential control lead to rectified electrokinetic transport in single asymmetric nanopores, nanopipettes, asymmetric nanochannels, or arrays/membranes. A notable steady-state phenomenon related to CP is ion current rectification (ICR) where the ionic current is higher at one potential polarity over the opposite. , The dynamics of the CP or ICR displays features such as transport hysteresis, current oscillation, and state-switching among others. Novel electrokinetic transport phenomena such as electroosmotic flow (EOF) rectification and negative differential resistance , are also observed associated with CP. One of the foundational problems remains to address the physiochemical origin of the hysteresis charges at both qualitative and quantitative levels that change in different time scales and ionic strengths for a given nanodevice or membrane/materials platform.…”
Section: Introductionmentioning
confidence: 99%
“…Enrichment and depletion of ions, that is, concentration polarization (CP), under external electrical potential control lead to rectified electrokinetic transport in single asymmetric nanopores, nanopipettes, asymmetric nanochannels, or arrays/membranes. A notable steady-state phenomenon related to CP is ion current rectification (ICR) where the ionic current is higher at one potential polarity over the opposite. , The dynamics of the CP or ICR displays features such as transport hysteresis, current oscillation, and state-switching among others. Novel electrokinetic transport phenomena such as electroosmotic flow (EOF) rectification and negative differential resistance , are also observed associated with CP. One of the foundational problems remains to address the physiochemical origin of the hysteresis charges at both qualitative and quantitative levels that change in different time scales and ionic strengths for a given nanodevice or membrane/materials platform.…”
Section: Introductionmentioning
confidence: 99%
“…Leong et al. realized a memristive system based on a nanopore with asymmetric solutions of different concentrations, [52] as shown in Figure 5A. Under the control of EOF, the nanopore in salt gradient showed hysteric ion concentration variation which lasts for a short moment owing to the diffusion limitation of ions, exhibiting potential of emulating behaviors of neurons with this EOF based strategy as shown in Figure 5B.…”
Section: Mechanisms Of Nanofluidic Memristorsmentioning
confidence: 99%
“…[49,50] With this mechanism, Luo et al achieved NDR effect by rational tuning EOF/convective flow balance in asymmetric solution, [51] indicating the possibility of forming nonlinear ion transport behaviors with this dynamic. Leong et al realized a memristive system based on a nanopore with asymmetric solutions of different concentrations, [52] as shown in Figure 5A. Under the control of EOF, the nanopore in salt gradient showed hysteric ion concentration variation which lasts for a short moment owing to the diffusion limitation of ions, exhibiting potential of emulating behaviors of neurons with this EOF based strategy as shown in Figure 5B.…”
Section: Interfacial Movement-based Nanofluidic Memristorsmentioning
confidence: 99%
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“…[66] This effect might be related to diffusio-osmotic flows in salt gradients and the effects of low hydraulic resistance and pore edge effects in the case of nanopores in 2D materials. [67,68] One of the major questions arising here for ILs is the nature of the double layer and the effective surface zeta potential. Although electro-osmotic flow should be diminished in the ILs by the increased viscosity and high structuring inside the nanopore, it is not clear what happens when ILs is in contact with different fluid, such as aqueous solution, or other type of ILs (see Figure 1b,c).…”
Section: Nanopores As Nanofluidic Devices and Single-molecular Tools With Simple Saltsmentioning
confidence: 99%