@misc{CorreaBrizziSchmeisser, author = {Corr{\^e}a, Silma Alberton and Brizzi, Simone and Schmeißer, Dieter}, title = {Depicting the Electronic Structure of HfO₂ Films by Spectroscopic Techniques}, series = {ECS Transactions}, volume = {75}, journal = {ECS Transactions}, number = {6}, issn = {1938-6737}, doi = {10.1149/07506.0145ecst}, pages = {145 -- 153}, abstract = {The electronic structure of HfO₂ films was investigated. The partial density of states for the valence and the conduction bands was determined by the detailed analysis of the O1s resonance profile by resonant photoelectron spectroscopy. The positions of valence band maximum and conduction band minimum, the excitation range for the polaronic states and the range of charge transfer band were found to be not influenced by the preparation conditions. The band gap was determined to be 6.2 eV and the energy of the charge neutrality level (referred to vacuum level) was determined as 4.7 eV. The Fermi level position was observed to vary about 1.2 eV depending on the preparation conditions, which indicates the presence of charges within the films.}, language = {en} } @incollection{SchmeisserKotCorreaetal., author = {Schmeißer, Dieter and Kot, Małgorzata and Corr{\^e}a, Silma Alberton and Das, Chittaranjan and Henkel, Karsten}, title = {Interface Potentials, Intrinsic Defects, and Passivation Mechanisms in Al₂O₃, HfO₂, and TiO₂ Ultrathin Films}, series = {Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry, vol. 3.1}, booktitle = {Encyclopedia of Interfacial Chemistry: Surface Science and Electrochemistry, vol. 3.1}, editor = {Wandelt, Klaus}, publisher = {Elsevier}, address = {Oxford}, isbn = {978-0-12-809739-7}, doi = {10.1016/B978-0-12-409547-2.14119-8}, pages = {162 -- 171}, abstract = {We study the electronic structure of ultrathin Al₂O₃, HfO₂, and TiO₂ ALD films by resonant photoelectron spectroscopy. We identify intrinsic defects which are responsible for the active sites in interface reactions, for the incorporation of intrinsic charges, and for the formation of local dipole momenta. All of these features determine the surface potentials and the reactivity of the surface of the atomic layer deposition coated systems. We give examples of charges and dipoles in Al₂O₃, on a study of the surface potentials in HfO₂, and relate the intrinsic defects in TiO₂ to their electrochemical relevance.}, language = {en} }