In this paper we propose an original approach for the real-time detection of industrial organic pollutants in water. It is based on the monitoring of the time evolution of the electrical impedance of low-cost graphitic nanomembranes. The developed approach exploits the high sensitivity of the impedance of 2D graphene-related materials to the adsorbents. We examined sensitivity of the nanomembranes based on pyrolyzed photoresist, pyrolytic carbon (PyC), and multilayer graphene films. In order to realize a prototype of a sensor capable of monitoring the pollutants in water, the membranes were integrated into an ad hoc printed circuit board. We demonstrated the correlation between the sensitivity of the electric impedance to adsorbents and the structure of the nanomembranes, and revealed that the amorphous PyC, being most homogeneous and adhesive to the SiO2 substrate, is the most promising in terms of integration into industrial pollutants sensors.

Baah, M., Rahman, A., Sibilia, S., Trezza, G., Ferrigno, L., Micheli, L., et al. (2022). Electrical impedance sensing of organic pollutants with ultrathin graphitic membranes. NANOTECHNOLOGY, 33(7) [10.1088/1361-6528/ac3861].

Electrical impedance sensing of organic pollutants with ultrathin graphitic membranes

Micheli L.;
2022-01-01

Abstract

In this paper we propose an original approach for the real-time detection of industrial organic pollutants in water. It is based on the monitoring of the time evolution of the electrical impedance of low-cost graphitic nanomembranes. The developed approach exploits the high sensitivity of the impedance of 2D graphene-related materials to the adsorbents. We examined sensitivity of the nanomembranes based on pyrolyzed photoresist, pyrolytic carbon (PyC), and multilayer graphene films. In order to realize a prototype of a sensor capable of monitoring the pollutants in water, the membranes were integrated into an ad hoc printed circuit board. We demonstrated the correlation between the sensitivity of the electric impedance to adsorbents and the structure of the nanomembranes, and revealed that the amorphous PyC, being most homogeneous and adhesive to the SiO2 substrate, is the most promising in terms of integration into industrial pollutants sensors.
2022
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/01 - CHIMICA ANALITICA
Settore ING-IND/01 - ARCHITETTURA NAVALE
English
electrical impedance spectroscopy
environmental sensors
graphitic films
NATO SPS Project “2DSENSE” and by the Academy of Finland via Flagship Programme Photonics Research and Innovation (PREIN), decision 320166, and grant 343393
Baah, M., Rahman, A., Sibilia, S., Trezza, G., Ferrigno, L., Micheli, L., et al. (2022). Electrical impedance sensing of organic pollutants with ultrathin graphitic membranes. NANOTECHNOLOGY, 33(7) [10.1088/1361-6528/ac3861].
Baah, M; Rahman, A; Sibilia, S; Trezza, G; Ferrigno, L; Micheli, L; Maffucci, A; Soboleva, E; Svirko, Y; Kuzhir, P
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/289476
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