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Multifunctional Materials: A Case Study of the Effects of Metal Doping on ZnO Tetrapods with Bismuth and Tin Oxides

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dc.contributor.author POSTICA, Vasile
dc.contributor.author GRÖTTRUP, Jorit
dc.contributor.author ADELUNG, Rainer
dc.contributor.author LUPAN, Oleg
dc.contributor.author MISHRA, Abhishek Kumar
dc.contributor.author LEEUW, Nora H. de
dc.contributor.author ABABII, Nicolai
dc.contributor.author CARREIRA, José F. C.
dc.contributor.author RODRIGUES, Joana
dc.contributor.author SEDRINE, Nebiha Ben
dc.contributor.author CORREIA, Maria Rosário
dc.contributor.author MONTEIRO, Teresa
dc.contributor.author SONTEA, Victor
dc.contributor.author MISHRA, Yogendra Kumar
dc.date.accessioned 2020-05-21T08:59:23Z
dc.date.available 2020-05-21T08:59:23Z
dc.date.issued 2017
dc.identifier.citation POSTICA, Vasile, GRÖTTRUP, Jorit, ADELUNG, Rainer et al. Multifunctional Materials: A Case Study of the Effects of Metal Doping on ZnO Tetrapods with Bismuth and Tin Oxides. In: Advanced Functional Materials. 2017, vol. 27, Is.6, p. 1604676. ISSN 1616-3028. en_US
dc.identifier.issn 1616-3028
dc.identifier.uri https://doi.org/10.1002/adfm.201604676
dc.identifier.uri http://repository.utm.md/handle/5014/8308
dc.description Access full text - https://doi.org/10.1002/adfm.201604676 en_US
dc.description.abstract Hybrid metal oxide nano- and microstructures exhibit novel properties, which make them promising candidates for a wide range of applications, including gas sensing. In this work, the characteristics of the hybrid ZnOBi2O3 and ZnO-Zn2SnO4 tetrapod (T) networks are investigated in detail. The gas sensing studies reveal improved performance of the hybrid networks compared to pure ZnO-T networks. For the ZnO-T-Bi2O3 networks, an enhancement in H2 gas response is obtained, although the observed p-type sensing behavior is attributed to the formed junctions between the arms of ZnO-T covered with Bi2O3 and the modulation of the regions where holes accumulate under exposure to H2 gas. In ZnO-T-Zn2SnO4 networks, a change in selectivity to CO gas with high response is noted. The devices based on individual ZnO-T-Bi2O3 and ZnO-T-Zn2SnO4 structures showed an enhanced H2 gas response, which is explained on the basis of interactions (electronic sensitization) between the ZnO-T arm and Bi2O3 shell layer and single Schottky contact structure, respectively. Density functional theory-based calculations provide mechanistic insights into the interaction of H2 and CO gas molecules with Bi- and Sn-doped ZnO(0001) surfaces, revealing changes in the Fermi energies, as well as charge transfer between the molecules and surface species, which facilitate gas sensing. en_US
dc.language.iso en en_US
dc.publisher WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim 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 gas sensors en_US
dc.subject hybrid 3D networks en_US
dc.subject networks en_US
dc.subject nanosensors en_US
dc.subject tetrapods en_US
dc.title Multifunctional Materials: A Case Study of the Effects of Metal Doping on ZnO Tetrapods with Bismuth and Tin Oxides en_US
dc.type Article en_US


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