Multi-Layered Bipolar Ionic Diode Working in Broad Range Ion Concentration

Bibliographic Details
Title: Multi-Layered Bipolar Ionic Diode Working in Broad Range Ion Concentration
Authors: Jaehyun Kim, Cong Wang, Jungyul Park
Source: Micromachines, Vol 14, Iss 7, p 1311 (2023)
Publisher Information: MDPI AG, 2023.
Publication Year: 2023
Collection: LCC:Mechanical engineering and machinery
Subject Terms: ion current rectification, multi-layer, bipolar ionic diode, nanochannel network membrane, nanoparticles, hysteresis loop, Mechanical engineering and machinery, TJ1-1570
More Details: Ion current rectification (ICR) is the ratio of ion current by forward bias to backward bias and is a critical indicator of diode performance. In previous studies, there have been many attempts to improve the performance of this ICR, but there is the intrinsic problem for geometric changes that induce ionic rectification due to fabrication problems. Additionally, the high ICR could be achieved in the narrow salt concentration range only. Here, we propose a multi-layered bipolar ionic diode based on an asymmetric nanochannel network membrane (NCNM), which is realized by soft lithography and self-assembly of homogenous-sized nanoparticles. Owing to the freely changeable geometry based on soft lithography, the ICR performance can be explored according to the variation of microchannel shape. The presented diode with multi-layered configuration shows strong ICR performance, and in a broad range of salt concentrations (0.1 mM~100 mM), steady ICR performance. It is interesting to note that when each anion-selective (AS) and cation-selective (CS) NCNM volume was similar to each optimized volume in a single-layered device, the maximum ICR was obtained. Multi-physics simulation, which reveals greater ionic concentration at the bipolar diode junction under forward bias and less depletion under backward in comparison to the single-layer scenario, supports this tendency as well. Additionally, under different frequencies and salt concentrations, a large-area hysteresis loop emerges, which indicates fascinating potential for electroosmotic pumps, memristors, biosensors, etc.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2072-666X
Relation: https://www.mdpi.com/2072-666X/14/7/1311; https://doaj.org/toc/2072-666X
DOI: 10.3390/mi14071311
Access URL: https://doaj.org/article/45061fb5f29e4a64aa3dfb36e86ab447
Accession Number: edsdoj.45061fb5f29e4a64aa3dfb36e86ab447
Database: Directory of Open Access Journals
More Details
ISSN:2072666X
DOI:10.3390/mi14071311
Published in:Micromachines
Language:English