Graphene has been recognized as a promising gas sensing material. The response of graphene-based sensors can be radically improved by introducing defects in graphene using, e. g., metal or metal oxide nanoparticles. We have functionalised CVD grown, single layer graphene by applying pulsed laser deposition (PLD) of V2O5 which resulted in a thin V2O5 layer on graphene with average thickness of ~0.6 nm. According to Raman analysis, PLD process also induced defects in graphene. Compared to unmodified graphene, the obtained chemiresistive sensor showed considerable improvement of sensing ammonia at room temperature. In addition, also the response time, sensitivity and reversibility were essentially enhanced due to graphene functionalisation by laser deposited V2O5. This can be explained by increased surface density of gas adsorption sites introduced by high energy atoms in laser ablation plasma and formation of nanophase boundaries between deposited V2O5 and graphene.
@article{arxiv.1803.06225,
title = {Graphene functionalised by laser ablated V2O5 as highly sensitive NH3 sensor},
author = {Margus Kodu and Artjom Berholts and Tauno Kahro and Mati Kook and Peeter Ritslaid and Helina Seemen and Tea Avarmaa and Harry Alles and Raivo Jaaniso},
journal= {arXiv preprint arXiv:1803.06225},
year = {2018}
}