Issue 14, 2024

Robust nanotube-based nanosensor designed for the detection of explosive molecules

Abstract

The adequate determination and detection of explosive molecules is key to introducing improvements in areas related to safety, whose progress depends on an adequate and rapid determination of dangerous substances. To detect explosives down to the molecular level and accurately discriminate between different but somehow similar substances, it is necessary to design sensors that can differentiate them uniquely and efficiently. In this study, we present a new generation nanoscale sensor based on carbon nanotubes with an adapted nanopore shape that is capable of effectively discriminating between five types of explosive compounds (TATP, RDX, PENT, HMX and DNT). We show that the interaction of each compound with the walls of the nanotubes induces changes in transmission and current that allows clear differentiation of each type of molecule. Interestingly, the transport properties do not depend on the orientation of the molecules within the nanopore in most cases, making it a robust device with high reproducibility and stability. The results also show that these systems can lead to relatively high thermoelectric performances and, furthermore, the Seebeck coefficient can be used to discriminate between them.

Graphical abstract: Robust nanotube-based nanosensor designed for the detection of explosive molecules

Supplementary files

Article information

Article type
Paper
Submitted
27 Feb 2024
Accepted
29 May 2024
First published
30 May 2024
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2024,6, 3553-3565

Robust nanotube-based nanosensor designed for the detection of explosive molecules

L. A. Algharagholy, V. M. García-Suárez and K. H. Bardan, Nanoscale Adv., 2024, 6, 3553 DOI: 10.1039/D4NA00166D

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