Highly Sensitive Gas Sensors Based on Silicene Nanoribbons
arXiv:1608.07508 · doi:10.1039/C6RA21293J
Abstract
Inspired by the recent successes in the development of two-dimensional based gas sensors capable of single gas molecule detection, we investigate the adsorption of gas molecules such as N2, NO, NO2, NH3, CO, CO2, CH4, SO2, and H2S on silicene nanoribbons using density functional theory and nonequilibrium Green's function methods. The most stable adsorption configurations, adsorption sites, adsorption energies, charge transfer, quantum conductance modulation, and electronic band structures of all studied gas molecules on SiNRs are studied. Our results indicate that NO, NO2, and SO2 are chemisorbed on SiNRs via strong covalent bonds, suggesting its potential application for disposable gas sensors. In addition, CO and NH3 are chemisorbed on SiNRs with moderate adsorption energy, alluding to its suitability as a highly sensitive gas sensor. The quantum conductance is detectably modulated by chemisorption of gas molecules which can be attributed to the charge transfer from the gas molecule to the SiNR. Other studied gases are physisorbed on SiNRs via van der Waals interactions. It is also found that the adsorption energies are enhanced by doping SiNRs with either B or N atom. Our results suggest that SiNRs show promise in gas molecule sensing applications.
12 pages, 11 figures
References in corpus (12)
- Electric Field Effect in Atomically Thin Carbon Films
- Detection of Individual Gas Molecules Absorbed on Graphene
- Energy Band Gap Engineering of Graphene Nanoribbons
- Adsorption of H2O, NH3, CO, NO2, and NO on graphene: A first-principles study
- Graphene Nano-Ribbon Electronics
- Electronic structure of silicon-based nanostructures
- Adsorption of Alkali, Alkaline Earth and Transition Metal Atoms on Silicene
- Large Enhancement and Tunable Band Gap in Silicene by Small Organic Molecule Adsorption
- Silicene as a new ultrafast DNA sequencing device
- Modeling of gas adsorption on graphene nanoribbons
- Silicene-based DNA Nucleobase Sensing
- Silicene Nanomesh
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