Abstract
Fluidic devices exhibiting ion current rectification (ICR), or ionic diodes, are of broad interest for applications including desalination, energy harvesting, and sensing, amongst others. For such applications a large conductance is desirable which can be achieved by simultaneously using thin membranes and wide pores. In this paper we demonstrate ICR in micron sized conical channels in a thin silicon membrane with pore diameters comparable to the membrane thickness but both much larger than the electrolyte screening length. We show that for these pores the entrance resistance is not only key to Ohmic conductance around 0 V, but also for understanding ICR, both of which we measure experimentally and capture within a single analytic theoretical framework. The only fit parameter in this theory is the membrane surface potential, for which we find that it is voltage dependent and its value is excessively large compared to literature. From this we infer that surface charge outside the pore strongly contributes to the observed Ohmic conductance and rectification by a different extent. We experimentally verify this hypothesis in a small array of pores and find that ICR vanishes due to pore-pore interactions mediated through the membrane surface, while Ohmic conductance around 0 V remains unaffected. We find that the pore-pore interaction for ICR is set by a long-ranged decay of the concentration which explains the surprising finding that the ICR vanishes for even a sparsely populated array with a pore-pore spacing as large as 7 μm.
| Original language | English |
|---|---|
| Pages (from-to) | 56226-56236 |
| Number of pages | 11 |
| Journal | ACS applied materials & interfaces |
| Volume | 14 |
| Issue number | 50 |
| Early online date | 2021 |
| DOIs | |
| Publication status | Published - 21 Dec 2022 |
Bibliographical note
Funding Information:This work is part of the research program at The Netherlands Organisation for Scientific Research (NWO). We acknowledge R. Brakkee and D. Ursem for contributions to the project and D. Koletzki for fabrication of the setup. This work is part of the D-ITP consortium, a program of The Netherlands Organisation for Scientific Research (NWO) that is funded by the Dutch Ministry of Education, Culture and Science (OCW).
Publisher Copyright:
© 2022 The Authors. Published by American Chemical Society.
Funding
This work is part of the research program at The Netherlands Organisation for Scientific Research (NWO). We acknowledge R. Brakkee and D. Ursem for contributions to the project and D. Koletzki for fabrication of the setup. This work is part of the D-ITP consortium, a program of The Netherlands Organisation for Scientific Research (NWO) that is funded by the Dutch Ministry of Education, Culture and Science (OCW).
Keywords
- conical micropore
- electro-osmosis
- ion current rectification
- Poisson-Nernst-Planck-Stokes equation
- pore array
- pore-pore interaction
- thin membrane
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