Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/170273
Title: A multi-layered graphene based gas sensor platform for discrimination of volatile organic compounds via differential intercalation
Authors: Inanc, Dilce Ozkendir
Ng, Zhi Kai
Baskurt, Mehmet
Keles, Berfin
Vardar, Gokay
Sahin, Hasan
Tsang, Siu Hon
Palaniappan, Alagappan
Yildiz, Umit Hakan
Teo, Edwin Hang Tong
Keywords: Engineering::Materials
Issue Date: 2023
Source: Inanc, D. O., Ng, Z. K., Baskurt, M., Keles, B., Vardar, G., Sahin, H., Tsang, S. H., Palaniappan, A., Yildiz, U. H. & Teo, E. H. T. (2023). A multi-layered graphene based gas sensor platform for discrimination of volatile organic compounds via differential intercalation. Journal of Materials Chemistry C, 11(14), 4703-4710. https://dx.doi.org/10.1039/d3tc00313b
Journal: Journal of Materials Chemistry C
Abstract: Selective and sensitive detection of volatile organic compounds (VOCs) is of critical importance for environmental monitoring, disease diagnosis and industrial applications. Among VOCs, assay development for primary alcohols has captured significant research attention since their toxicity causes adverse effects on gastrointestinal and central nerve systems, resulting in irreversible blindness, and coma, and can be even fatal at high exposure levels. However, selective detection of primary alcohols is extremely challenging owing to the similarity in their molecular structure and characteristic groups. Herein, we have attempted to investigate the differential methanol (MeOH)-ethanol (EtOH) discriminative properties of single-layer, bi-layer, and multi-layer graphene morphologies. Chemiresistors fabricated using the three morphologies of graphene illustrate discriminative MeOH-EtOH responses, which is attributed to the phenomenon of differential intercalation of MeOH within layered graphene morphologies as compared to that of EtOH. This hypothesis is verified by density functional theory calculations, which revealed that the adsorption of EtOH molecules on the graphene surface is more energetically favorable as compared to that of MeOH molecules, thereby inhibiting their intercalation within the layered graphene morphologies. It is further evaluated that the degree of MeOH intercalation increases with increasing layers of graphene for obtaining differential MeOH-EtOH responses. Experimental results suggest possibilities to develop selective and sensitive MeOH assays fabricated using various graphene morphologies in a combinatorial sensor array format.
URI: https://hdl.handle.net/10356/170273
ISSN: 2050-7526
DOI: 10.1039/d3tc00313b
Schools: School of Electrical and Electronic Engineering 
School of Materials Science and Engineering 
Research Centres: Temasek Laboratories @ NTU 
Rights: © 2023 The Royal Society of Chemistry. All rights reserved.
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:EEE Journal Articles

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