Please use this identifier to cite or link to this item: https://doi.org/10.1038/srep17424
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dc.titleThickness-induced metal-insulator transition in Sb-doped SnO 2 Ultrathin Films: The role of quantum confinement
dc.contributor.authorKe, C
dc.contributor.authorZhu, W
dc.contributor.authorZhang, Z
dc.contributor.authorSoon Tok, E
dc.contributor.authorLing, B
dc.contributor.authorPan, J
dc.date.accessioned2020-09-10T01:46:32Z
dc.date.available2020-09-10T01:46:32Z
dc.date.issued2015
dc.identifier.citationKe, C, Zhu, W, Zhang, Z, Soon Tok, E, Ling, B, Pan, J (2015). Thickness-induced metal-insulator transition in Sb-doped SnO 2 Ultrathin Films: The role of quantum confinement. Scientific Reports 5 : 17424. ScholarBank@NUS Repository. https://doi.org/10.1038/srep17424
dc.identifier.issn20452322
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/175461
dc.description.abstractA thickness induced metal-insulator transition (MIT) was firstly observed in Sb-doped SnO 2 (SnO 2:Sb) epitaxial ultrathin films deposited on sapphire substrates by pulsed laser deposition. Both electrical and spectroscopic studies provide clear evidence of a critical thickness for the metallic conductivity in SnO 2:Sb thin films and the oxidation state transition of the impurity element Sb. With the shrinkage of film thickness, the broadening of the energy band gap as well as the enhancement of the impurity activation energy was studied and attributed to the quantum confinement effect. Based on the scenario of impurity level pinning and band gap broadening in quantum confined nanostructures, we proposed a generalized energy diagram to understand the thickness induced MIT in the SnO 2:Sb system.
dc.publisherNature Publishing Group
dc.sourceUnpaywall 20200831
dc.typeArticle
dc.contributor.departmentDEPT OF PHYSICS
dc.description.doi10.1038/srep17424
dc.description.sourcetitleScientific Reports
dc.description.volume5
dc.description.page17424
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