Modulation of Ionic Current Rectification in Ultra-Short Conical Nanopores
arXiv:2011.09681 · doi:10.1021/acs.analchem.0c03989
Abstract
Nanopores that exhibit ionic current rectification (ICR) behave like diodes, such that they transport ions more efficiently in one direction than the other. Conical nanopores have been shown to rectify ionic current, but only those with at least 500 nm in length exhibit significant ICR. Here, through the finite element method, we show how ICR of conical nanopores with length below 200 nm can be tuned by controlling individual charged surfaces i.e. inner pore surface (surface_inner), and exterior pore surfaces on the tip and base side (surface_tip and surface_base). The charged surface_inner and surface_tip can induce obvious ICR individually, while the effects of the charged surface_base on ICR can be ignored. The fully charged surface_inner alone could render the nanopore counterion-selective and induces significant ion concentration polarization in the tip region, which causes reverse ICR compared to nanopores with all surface charged. In addition, the direction and degree of rectification can be further tuned by the depth of the charged surface_inner. When considering the exterior membrane surface only, the charged surface_tip causes intra-pore ionic enrichment and depletion under opposite biases which results in significant ICR. Its effective region is within ~40 nm beyond the tip orifice. We also found that individual charged parts of the pore system contributed to ICR in an additive way due to the additive effect on the ion concentration regulation along the pore axis. With various combinations of fully/partially charged surface_inner and surface_tip, diverse ICR ratios from ~2 to ~170 can be achieved. Our findings shed light on the mechanism of ionic current rectification in ultra-short conical nanopores, and provide a useful guide to the design and modification of ultra-short conical nanopores in ionic circuits and nanofluidic sensors.
25 pages, 8 figures
References in corpus (1)
Cited by in corpus (16)
- High-Performance Nanofluidic Osmotic Power Generation Enabled by Exterior Surface Charges under the Natural Salt Gradient
- Dynamic Response of Ionic Current in Conical Nanopores
- Influences of Electroosmotic Flow on Ionic Current through Nanopores: a Comprehensive Understanding
- Modulation Mechanism of Ionic Transport through Short Nanopores by Charged Exterior Surfaces
- Influences of Divalent Ions in Natural Seawater/River Water on Nanofluidic Osmotic Energy Generation
- Ion transport through differently charged nanoporous membranes: from a single nanopore to multi-nanopores
- Modulation of ionic current rectification in short bipolar nanopores
- Ion Transport through Short Nanopores Modulated by Charged Exterior Surfaces
- Characterization of the Surface Charge Property and Porosity of Track-etched Polymer Membranes
- Theoretical prediction of diffusive ionic current through nanopores under salt gradients
- Low-cost and Convenient Fabrication of Polymer Micro/Nanopores with the Needle Punching Process and Their Applications in Nanofluidic Sensing
- Ionic current rectification under concentration gradients and its application in evaluating surface charge properties of micropores
- Modulation of Electroosmotic Flow through Short Nanopores by Charged Exterior Surfaces
- Modulation of Ionic Current Rectification in Short Unipolar Nanopores
- Detection of Nanopores with the Scanning Ion Conductance Microscopy: A Simulation Study
- Significantly Enhanced Performance of Nanofluidic Osmotic Power Generation by Slipping Surfaces of Nanopores