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Download Oxide Ultrathin Films: Science and Technology by Gianfranco Pacchioni, Sergio Valeri PDF

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By Gianfranco Pacchioni, Sergio Valeri

A wealth of knowledge in a single obtainable ebook. Written via overseas specialists from multidisciplinary fields, this in-depth exploration of oxide ultrathin movies covers all facets of those platforms, beginning with practise and characterization, and happening to geometrical and electronic
constitution, in addition to purposes in present and destiny platforms and devices.

From the Contents:
* Synthesis and training of Oxide Ultrathin Films
* Characterization instruments of Oxide Ultrathin Films
* Ordered Oxide Nanostructures on steel Surfaces
* strange homes of Oxides and different Insulators within the Ultrathin Limit
* Silica and High-K Dielectrics skinny motion pictures in Microelectronics
* Oxide Passive motion pictures and Corrosion Protection
* Oxide movies as Catalytic fabrics and as types of actual Catalysts
* Oxide movies in Spintronics
* Oxide Ultrathin movies in good Oxide gas Cells
* obvious carrying out and Chromogenic Oxide motion pictures as solar power Materials
* Oxide Ultrathin movies in Sensor Applications
* Ferroelectricity in Ultrathin movie Capacitors
* Titania skinny movies in Biocompatible fabrics and scientific Implants
* Oxide Nanowires for brand new Chemical Sensor DevicesContent:
Chapter 1 Synthesis and practise of Oxide Ultrathin movies (pages 1–26): Prof. Sergio Valeri and Stefania Benedetti
Chapter 2 Characterization instruments of Ultrathin Oxide motion pictures (pages 27–46): David C. Grinter and Geoff Thornton
Chapter three Ordered Oxide Nanostructures on steel Surfaces (pages 47–73): Falko P. Netzer and Svetlozar Surnev
Chapter four strange houses of Oxides and different Insulators within the Ultrathin restrict (pages 75–100): Livia Giordano and Prof. Gianfranco Pacchioni
Chapter five Silica and High?k Dielectric skinny movies in Microelectronics (pages 101–118): Gennadi Bersuker, Keith McKenna and Alexander Shluger
Chapter 6 Oxide Passive movies and Corrosion safety (pages 119–144): Philippe Marcus and Vincent Maurice
Chapter 7 Oxide motion pictures as Catalytic fabrics and versions of genuine Catalysts (pages 145–179): Hans?Joachim Freund
Chapter eight Oxide movies in Spintronics (pages 181–200): Riccardo Bertacco and Franco Ciccacci
Chapter nine Oxide Ultrathin motion pictures for stable Oxide gas Cells (pages 201–220): Tatsumi Ishihara
Chapter 10 obvious engaging in and Chromogenic Oxide motion pictures as solar power fabrics (pages 221–238): Claes?Goran Granqvist
Chapter eleven Oxide Ultrathin movies in Sensor purposes (pages 239–263): Elise Brunet, Giorgio C. Mutinati, Stephan Steinhauer and Anton Kock
Chapter 12 Ferroelectricity in Ultrathin?Film Capacitors (pages 265–230): Celine Lichtensteiger, Pavlo Zubko, Massimiliano Stengel, Pablo Aguado?Puente, Jean?Marc Triscone, Philippe Ghosez and Javier Junquera
Chapter thirteen Titania skinny movies in Biocompatible Matals and scientific Implants (pages 309–328): Fabio Variola and Antonio Nanci
Chapter 14 Oxide Nanowires for brand new Chemical Sensor units (pages 329–343): Alberto Vomiero, Elisabetta Comini and Giorgio Sberveglieri

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Mater. , 16, 403–408. , and Miki-Yoshida, M. (1999) Thin Solid Films, 350, 192–202. R. (2003) J. Cryst. Growth, 247, 497–504. , and Salama, K. (2006) Supercond. Sci. , 19, R1–R21. 140 Znaidi, L. (2010) Mater. Sci. Eng. B, 174, 18–30. V. (2003) Thin Solid Films, 428, 257–262. , and Chaudhuri, S. (2004) Mater. , 58, 3952–3957. , and Kagawa, S. (1995) J. Am. Chem. , 117, 1139–1140. , and Kunitake, T. (1997) Chem. , 9, 1296–1298. 145 Sasaki, T. and Watanabe, M. (1998) J. Am. Chem. , 120, 4682–4689.

Chem. Chem. , 11, 3727–3732. G. (2009) Science, 324, 367–370. K. and Weiss, W. (1999) Surf. , 432, L627–L634. , and Valeri, S. (2004) Phys. Rev. B, 69, 75418. , and Ha˚rsta, A. (2004) J. Cryst. Growth, 260, 191–200. H. (2008) J. Phys. Chem. C, 112, 9336–9345. , and Chab, V. (2008) Thin Solid Films, 516, 6120–6124. , and Libuda, J. (2009) Surf. , 603, 3382–3388. , and Zaera, F. (1996) Surf. , 369, 217–230. L. (2002) Surf. , 501, 102–111. , and Neddermeyer, H. (1991) Surf. , 253, 116–128 and references therein.

LEED is commonly used in a qualitative fashion when applied to ultrathin film investigations, but can still be a powerful tool for examining the registry of epitaxial growth and judging order and any strain in films. PES, either with ultraviolet light or X-ray radiation (X-ray photoelectron spectroscopy (XPS)), is routinely applied to ultrathin films to investigate the electronic structure. In the case of XPS, higher intensity synchrotron light is often employed to provide increased sensitivity for the investigation of very thin films.

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