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1

Fanciulli, Marco, and Giovanna Scarel, eds. Rare Earth Oxide Thin Films. Berlin, Heidelberg: Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/b137342.

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2

Mele, Paolo, Tamio Endo, Shunichi Arisawa, Chaoyang Li, and Tetsuo Tsuchiya, eds. Oxide Thin Films, Multilayers, and Nanocomposites. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-14478-8.

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3

Ezema, Fabian I., Chandrakant D. Lokhande, and Rajan Jose, eds. Chemically Deposited Nanocrystalline Metal Oxide Thin Films. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-68462-4.

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4

Schneller, Theodor, Rainer Waser, Marija Kosec, and David Payne, eds. Chemical Solution Deposition of Functional Oxide Thin Films. Vienna: Springer Vienna, 2013. http://dx.doi.org/10.1007/978-3-211-99311-8.

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5

Murphy, Thomas Patrick. Electrochromic properties of tin-nickel oxide thin films. Oxford: Oxford Brookes University, 1997.

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6

Elfallal, Ibrahim Abdel-Wahab. A study of indium tin oxide thin films. Salford: University of Salford, 1992.

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7

M, Durbin Steven, Wenckstern Holger von, Allen Martin W, and Materials Research Society, eds. Zinc oxide and related materials--2009: Symposium held November 30-December 3, 2009, Boston, Massachusetts, USA. Warrendale, Pa: Materials Research Society, 2010.

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8

M, Fanciulli, and Scarel Giovanna, eds. Rare earth oxide thin films: Growth, characterization, and applications. Berlin: Springer, 2007.

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9

Yagoubi, Benabdellah. A study of some thin transition metal oxide films. Uxbridge: Brunel University, 1989.

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10

Barquinha, Pedro. Transparent oxide electronics: From materials to devices. Hoboken, N.J: Wiley, 2012.

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11

Nihon Gakujutsu Shinkōkai. Tōmei Sankabutsu Hikari Denshi Zairyō Dai 166 Iinkai ., ed. Tōmei dōdenmaku no gijutsu: Technology of transparent conductive oxide thin-films. 2nd ed. Tōkyō: Ōmusha, 2006.

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12

Al-Dhhan, Ziad Tarik. Dielectric properties of thin films based on cerium oxide (CeO2). Uxbridge: Brunel University, 1988.

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13

Sprengel, Horst. Dynamics of thin liquid oxide films covering a solid fuel. Bielefeld: Fakultät für Physik, Universität Bielefeld, 1993.

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14

Symposium on Surface Oxide Films (2003 Orlando, Fla.). Surface oxide films: Proceedings of the international symposium. Edited by Birss Viola, Electrochemical Society. Physical Electrochemistry Division, Electrochemical Society Corrosion Division, and Electrochemical Society Meeting. Pennington, N.J: Electrochemical Society, 2004.

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15

Ziaja, Jan. Cienkowarstwowe struktury metaliczne i tlenkowe: Właściwości, technologia, zastosowanie w elektrotechnice = Thin layer metallic and oxide structures : properties, technology, electrotechnics applications. Wrocław: Oficyna Wydawnicza Politechniki Wrocławskiej, 2012.

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16

C, Jagadish, and Pearton S. J, eds. Zinc oxide bulk, thin films and nanostructures: Processing, properties and applications. Amsterdam: Elsevier, 2006.

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17

Magnetic properties of antiferromagnetic oxide materials: Surfaces, interfaces, and thin films. Weinheim: Wiley-VCH, 2010.

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18

National Renewable Energy Laboratory (U.S.), ed. Amorphous indium-zinc-oxide transparent conductors for thin film PV: Preprint. Golden, CO: National Renewable Energy Laboratory, 2011.

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19

Wolf, Andrew Robert. The electrochemistry of amorphous iron bismuth oxide thin films prepared by sputtering. Ottawa: National Library of Canada, 1992.

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20

Bird, Daniel P. C. The investigation of thin metal oxide films by STM and RAIRS studies. Manchester: UMIST, 1997.

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21

Roca, Alejandro G., Paolo Mele, Hanae Kijima-Aoki, Elvira Fantechi, Jana K. Vejpravova, Martin Kalbac, Satoru Kaneko, and Tamio Endo, eds. Surfaces and Interfaces of Metal Oxide Thin Films, Multilayers, Nanoparticles and Nano-composites. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-74073-3.

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22

Cevro, Mirza. A study of the deposition of oxide thin films by ion beam techniques. Salford: University of Salford, 1994.

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23

Khatamian, D. Crystal structure of thin oxide films grown on Zr-Nb alloys studied by RHEED. Chalk River, Ont: Chalk River Laboratories, 1996.

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24

Khatamian, Djamshid. Crystal structure of thin oxide films grown on Zr-Nb alloys studied by RHEED. Chalk River, Ont: Reactor Materials Research Branch, Chalk River Laboratories, 1996.

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25

S, Speck James, ed. Epitaxial oxide thin films II: Symposium held November 26-30, 1995, Boston, Massachusetts, U.S.A. Pittsburgh, Pa: Materials Research Society, 1996.

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26

Mian, Abdul Razzaq. Some electronic properties of thin dielectric oxide films containing cerium, niobium, vanadium and silicon. Uxbridge: Brunel University, 1988.

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27

Musil, Jindřich. Tenké vrstvy nitridu titanu. Praha: Academia, 1989.

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28

France) International Conference on Thin Film Deposition of Oxide Multilayers Hybrid Structures (2nd 2001 Autrans. International Conference on Thin Film Deposition of Oxide Multilayers Hybrid Structures: TFDOM-2 : Autrans, France, October 18-19, 2001. Les Ulis, France: EDP Sciences, 2001.

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29

M, Martino, ed. ZnO nanostructures deposited by laser ablation. Hauppauge, N.Y: Nova Science Publishers, 2009.

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30

Davor, Pavuna, Bozovic Ivan, and Society of Photo-optical Instrumentation Engineers., eds. Oxide superconductor physics and nano-engineering: 26-28 January 1994, Los Angeles, California. Bellingham, Wash., USA: SPIE, 1994.

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31

Ivan, Bozovic, Pavuna Davor, and Society of Photo-optical Instrumentation Engineers., eds. Oxide superconductor physics and nano-engineering II: 30 January -2 February, San Jose, California. Bellingham, Wash., USA: SPIE, 1996.

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32

Peters, Christoph. Grain-size effects in nanoscaled electrolyte and cathode thin films for solid oxide fuel cells (SOFC). Karlsruhe: Univ.-Verl. Karlsruhe, 2008.

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33

G, Schlom Darrell, ed. Epitaxial oxide thin films III: Symposium held March 31-April 2, 1997, San Francisco, California, U.S.A. Pittsburgh, Pa: Materials Research Society, 1997.

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34

Pringle, Steven Derek. A study of the formation of silicon oxide thin films using dual ion beam reactive sputtering. Salford: University of Salford, 1994.

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35

K, Fork David, ed. Epitaxial oxide thin films and heterostructures: Symposium held April 5-7, 1994, San Francisco, California, USA. Pittsburgh, PA: Materials Research Society, 1994.

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36

Laconte, J. Micromachined thin-film sensors for SOI-CMOS co-integration. New York: Springer, 2011.

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37

Chubb, Donald L. Emittance theory for thin film selective emitter. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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38

Chubb, Donald L. Emittance theory for thin film selective emitter. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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39

Vladimir, Matias, and Materials Research Society Meeting, eds. Artificially induced grain alignment in thin films: Symposium held December 2-3, 2008, Boston, Massachusetts, U.S.A. Warrendale, Pa: Materials Research Society, 2009.

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40

Klaus, Ellmer, Klein Andreas Dr, and Rech Bernd, eds. Transparent conductive zinc oxide: Basics and applications in thin film solar cells. Berlin: Springer, 2008.

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41

Thin film metal-oxides: Fundamentals and applications in electronics and energy. New York: Springer, 2010.

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42

Prellier, Wilfred. Oxide Thin Films. Taylor & Francis Group, 2010.

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43

Prellier, Wilfred. Oxide Thin Films. Taylor & Francis Group, 2014.

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44

Netzer, Falko P., and Claudine Noguera. Oxide Thin Films and Nanostructures. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198834618.001.0001.

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Abstract:
Nanostructured oxide materials ultra-thin films, nanoparticles and other nanometer-scale objects play prominent roles in many aspects of our every-day life, in nature and in technological applications, among which is the all-oxide electronics of tomorrow. Due to their reduced dimensions and dimensionality, they strongly interact with their environment gaseous atmosphere, water or support. Their novel physical and chemical properties are the subject of this book from both a fundamental and an applied perspective. It reviews and illustrates the various methodologies for their growth, fabrication, experimental and theoretical characterization. The role of key parameters such as film thickness, nanoparticle size and support interactions in driving their fundamental properties is underlined. At the ultimate thickness limit, two-dimensional oxide materials are generated, whose functionalities and potential applications are described. The emerging field of cation mixing is mentioned, which opens new avenues for engineering many oxide properties, as witnessed by natural oxide nanomaterials such as clay minerals, which, beyond their role at the Earth surface, are now widely used in a whole range of human activities. Oxide nanomaterials are involved in many interdisciplinary fields of advanced nanotechnologies: catalysis, photocatalysis, solar energy materials, fuel cells, corrosion protection, and biotechnological applications are amongst the areas where they are making an impact; prototypical examples are outlined. A cautious glimpse into future developments of scientific activity is finally ventured to round off the treatise.
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45

Noguera, Claudine, and Falko P. Netzer. Oxide Thin Films and Nanostructures. Oxford University Press, 2021.

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46

Saji, K. J. Oxide Thin Film Transistors. Nova Science Publishers, Incorporated, 2017.

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47

Li, Chaoyang, Paolo Mele, Tamio Endo, Tetsuo Tsuchiya, and Shunichi Arisawa. Oxide Thin Films, Multilayers, and Nanocomposites. Springer, 2015.

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48

Li, Chaoyang, Paolo Mele, Tamio Endo, Tetsuo Tsuchiya, and Shunichi Arisawa. Oxide Thin Films, Multilayers, and Nanocomposites. Springer London, Limited, 2015.

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49

Li, Chaoyang, Paolo Mele, Tamio Endo, Tetsuo Tsuchiya, and Shunichi Arisawa. Oxide Thin Films, Multilayers, and Nanocomposites. Springer, 2016.

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50

Multifunctional Oxide Heterostructures. Oxford University Press, 2012.

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