Conduction mechanisms in epitaxial NiO/Graphene gas sensors

•Single layer graphene shows an excellent n-type response towards NO2.•A NiO layer on top changes its response to p-type but sensitivity does not decrease.•This conduction type switch is the result of the lowering of the Fermi level in graphene•Good response towards 100 ppb of NO2 are achieved.•Sub-...

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Veröffentlicht in:Sensors and actuators. B, Chemical Chemical, 2020-12, Vol.325, p.128797, Article 128797
Hauptverfasser: Niavol, Somayeh Saadat, Budde, Melanie, Papadogianni, Alexandra, Heilmann, Martin, Moghaddam, Hossain Milani, Aldao, Celso M., Ligorio, Giovanni, List-Kratochvil, Emil J.W., Lopes, Joao Marcelo J., Barsan, Nicolae, Bierwagen, Oliver, Schipani, Federico
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Sprache:eng
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Zusammenfassung:•Single layer graphene shows an excellent n-type response towards NO2.•A NiO layer on top changes its response to p-type but sensitivity does not decrease.•This conduction type switch is the result of the lowering of the Fermi level in graphene•Good response towards 100 ppb of NO2 are achieved.•Sub-ppb responses are extrapolated. Integrated, highly sensitive and reversible sensor devices for toxic and hazardous gases in environmental pollution monitoring can be realized with graphene-based materials. Here we show that, single layer graphene grown on SiC can be utilized to implement sensor devices being extremely sensitive towards NO2 showing an n-type response. A second type of sensor with an added NiO layer on top of the single layer graphene changed its response to p-type but did not reduce its sensitivity. We show that the conduction switch from n-type to p-type was not a consequence of an alteration of the graphene layer but is found to be an effect of the NiO layer. We find that the NiO leads to lowering of the Fermi level to a point that a crossing of the Dirac Point in the graphene switched the conduction type. These sensors were tested in the 100 ppb NO2 regime, showing good response and a detection limit extrapolated to be below 1 ppb. This new NiO/graphene/SiC configuration can be an attractive p-type sub-ppb sensor platform for NO2 and related gases.
ISSN:0925-4005
1873-3077
DOI:10.1016/j.snb.2020.128797