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Multifunctional devices based on 3D hybrid networks of ZnO and 3D carbon nanomaterials

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dc.contributor.author REIMERS, Armin
dc.contributor.author POSTICA, Vasile
dc.contributor.author Kumar, Mishra Yogendra
dc.contributor.author BÎRNAZ, Adrian
dc.contributor.author NIA, Ali Shaygan
dc.contributor.author FENG, Xinliang
dc.date.accessioned 2025-02-21T05:40:29Z
dc.date.available 2025-02-21T05:40:29Z
dc.date.issued 2023
dc.identifier.citation REIMERS, Armin; Vasile POSTICA; Yogendra Kumar Mishra; Adrian BÎRNAZ; Ali Shaygan NIA and Xinliang FENG. Multifunctional devices based on 3D hybrid networks of ZnO and 3D carbon nanomaterials. In: 13th International Conference Nanomaterials: Applications and Properties, NAP, Slovakia, Bratislava, 10-15 September, 2023. Institute of Electrical and Electronics Engineers, 2023, pp. NN011-NN014. ISBN 979-83-50329-09-4, eISBN 979-83-50329-08-7. en_US
dc.identifier.isbn 979-83-50329-09-4
dc.identifier.isbn 979-83-50329-08-7
dc.identifier.uri https://doi.org/10.1109/NAP59739.2023.10310990
dc.identifier.uri https://repository.utm.md/handle/5014/29794
dc.description Access full text: https://doi.org/10.1109/NAP59739.2023.10310990 en_US
dc.description.abstract In this work, the room temperature UV and gas sensing properties of the three-dimensional (3D) networks based on zinc oxide (ZnO) tetrapods coated with carbon-based two-dimensional (2D) nanomaterials were investigated. Therefore, highly porous (~94%) cylindrical pellets of ZnO tetrapods were infiltrated with dispersions of graphene oxide (GO), electrochemically exfoliated graphene (EG) and reduced graphene oxide (rGO), resulting in the formation of nano-porous few-layer membranes on the surfaces of the individual tetrapods, that affect both, their gas and UV sensing properties. It was found, that by coating ZnO with rather insulating materials such as GO, the UV response of ZnO networks can be improved from ~ 5 to ~ 17 at an applied bias voltage of 10 V. On the other hand, the addition of conductive carbon-based nanomaterials, such as EG and rGO, results in a decrease in UV response compared to the pristine ZnO networks. The decrease is associated with the formation of percolating pathes through the ZnO network, that shunt the effect of potential barrier modulation between the ZnO tetrapods under UV illumination. However, while decreasing the UV response, EG enabled gas sensing. The EG based 3D networks were capable of detecting NH3 at room temperature, showing a gas response of ~ 1.15. The gas response could even be slightly increased by removing the underlying ZnO template, creating ultra-lightweight NH3 sensors. This study illustrates, that creating 3D hybrid networks based on ZnO and carbon based 2D nanomaterials has huge potential for synergistic effects that achieve new unique sensing properties at room temperature. en_US
dc.language.iso en en_US
dc.publisher Institute of Electrical and Electronics Engineers en_US
dc.rights Attribution-NonCommercial-NoDerivs 3.0 United States *
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/3.0/us/ *
dc.subject graphene oxide en_US
dc.subject zinc oxide en_US
dc.subject 2D nanomaterials en_US
dc.subject gas sensor en_US
dc.subject multifunctional en_US
dc.title Multifunctional devices based on 3D hybrid networks of ZnO and 3D carbon nanomaterials en_US
dc.type Article en_US


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