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Sub-10 nm transparent all-around-gated ambipolar ionic field effect transistor SCIE SCOPUS

Title
Sub-10 nm transparent all-around-gated ambipolar ionic field effect transistor
Authors
Lee, SHLee, HJin, TPark, SYoon, BJSung, GYKim, KBKim, SJ
Date Issued
2015-01
Publisher
ROYAL SOC CHEMISTRY
Abstract
In this paper, we developed a versatile ionic field effect transistor (IFET) which has an ambipolar function for manipulating molecules regardless of their polarity and can be operated at a wide range of electrolytic concentrations (10(-5) M-1 M). The IFET has circular nanochannels radially covered by gate electrodes, called "all-around-gate", with an aluminum oxide (Al2O3) oxide layer of a near-zero surface charge. Experimental and numerical validations were conducted for characterizing the IFET. We found that the versatility originated from the zero-charge density of the oxide layer and all-around-gate structure which increased the efficiency of the gate effect 5 times higher than a previously developed planar-gate by capacitance calculations. Our numerical model adapted Poisson-Nernst-Planck-Stokes (PNPS) formulations with additional nonlinear constraints of a fringing field effect and a counter-ion condensation and the experimental and numerical results were well matched. The device can control the transportation of ions at concentrations up to 1 M electrolyte which resembles a backflow of a shale gas extraction process. Furthermore, while traditional IFETs can manipulate either positively or negatively charged species depending on the inherently large surface charge of oxide layer, the presenting device and mechanism provide effective means to control the motion of both negatively and positively charged molecules which is important in biomolecule transport through nanochannels, medical diagnosis system and point-of-care system, etc.
Keywords
CONCENTRATION POLARIZATION LAYER; SURFACE-CHARGE PROPERTY; SOLID-STATE NANOPORES; NANOFLUIDIC TRANSISTORS; ELECTROOSMOTIC FLOW; DNA TRANSLOCATION; TRANSPORT; NANOCHANNELS; CONVERSION; GRADIENT
URI
https://oasis.postech.ac.kr/handle/2014.oak/13021
DOI
10.1039/C4NR04089A
ISSN
2040-3364
Article Type
Article
Citation
NANOSCALE, vol. 7, no. 3, page. 936 - 946, 2015-01
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