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Potentiality of polysilicon nanogap structure for label‐free biomolecular detection

T.S. Dhahi (Institute of Nano Electronic Engineering, University Malaysia Perlis, Kangar, Perlis, Malaysia and Physics Department, Basrah University, Basrah, Iraq)
U. Hashim (Institute of Nano Electronic Engineering, University Malaysia Perlis, Kangar, Perlis, Malaysia)
M.E. Ali (Institute of Nano Electronic Engineering, University Malaysia Perlis, Kangar, Perlis, Malaysia)

Microelectronics International

ISSN: 1356-5362

Article publication date: 26 April 2013

123

Abstract

Purpose

The purpose of this paper was to systematically study the electrical properties of 5‐, 42‐ and 75‐nm gap polysilicon structures to evaluate the potentiality of these structures to be used in biomolecular sensing devices.

Design/methodology/approach

The authors previously reported the fabrication and morphological characterization of these structures. In this report, they electrically probed the presence of nanogap through current measurement. The effects of electrolytes on the capacitance profiles of these structures were systematically studied with air, water and various dilutions of phosphate buffer saline.

Findings

An increment in capacitance was found with the increment in electrolyte concentration. Improvement in current flow, capacitance, permittivity, and conductivity were observed with the smaller size nanogaps, suggesting their applications in low power consuming devices.

Originality/value

Since nanogap‐based dielectric biosensing devices need to be operated with a low level of current to avoid biomolecular damage, these structures should have potential applications in dielectric‐based biomolecular detection using a low cost dielectric analyser.

Keywords

Citation

Dhahi, T.S., Hashim, U. and Ali, M.E. (2013), "Potentiality of polysilicon nanogap structure for label‐free biomolecular detection", Microelectronics International, Vol. 30 No. 2, pp. 68-72. https://doi.org/10.1108/13565361311314449

Publisher

:

Emerald Group Publishing Limited

Copyright © 2013, Emerald Group Publishing Limited

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