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1

Mendes, M. C. S. Aspects of the chemistry of D-glucopyranosyl oxime ethers. Manchester: UMIST, 1993.

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2

Rao, C. N. R. 1934- and International Union of Pure and Applied Chemistry., eds. Chemistry of oxide superconductors. Oxford: Blackwell Scientific Publications, 1988.

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3

Metal oxide chemistry and synthesis: From solution to oxide. Chichester: John Wiley, 2000.

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4

1944-, Woodruff D. P., ed. Oxide surfaces. Amsterdam: Elsevier, 2001.

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5

A, Wingrave James, ed. Oxide surfaces. New York: Marcel Dekker, 2001.

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6

Kapustin, Vladimir, and Illarion Li. Theory, electronic structure and physical chemistry of materials cathodes for microwave devices. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1041298.

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In the monograph the kinetic theory of cathode materials based on metal and oxide phases, analytical methods of research of the cathodes, methods of study of their emission properties. Details the authors discuss the theory and physico-chemistry of oxide-Nickel, metalloplastic, and metal alloyed oxide-yttrium cathodes, including a cathode for magnetrons with cold start. Designed for scientific and engineering-technical workers, specializing in electronic materials and electronic devices.
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7

Martin, Jansen, ed. High performance non-oxide ceramics. Berlin: Springer, 2002.

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8

Ryshkewitch, Eugene. Oxide ceramics: Physical chemistry and technology. 2nd ed. Haskell, N.J: General Ceramics, 1985.

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9

Noguera, Claudine. Physics and chemistry at oxide surfaces. Cambridge [England]: Cambridge University Press, 1996.

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10

Eugene, Ryshkewitch. Oxide ceramics: Physical chemistry and technology. 2nd ed. Haskell, N.J: General Ceramics, 1985.

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11

Carpenter, Michael A. Metal Oxide Nanomaterials for Chemical Sensors. New York, NY: Springer New York, 2013.

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12

Iye, Yasuhiro, and Hiroshi Yasuoka, eds. The Physics and Chemistry of Oxide Superconductors. Berlin, Heidelberg: Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-77154-5.

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13

Henry, Yann A., Annie Guissani, and Béatrice Ducastel. Nitric Oxide Research from Chemistry to Biology. Boston, MA: Springer US, 1997. http://dx.doi.org/10.1007/978-1-4613-1185-0.

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14

Surface Chemistry Studies of Transition Metal Oxides: Titanium Oxide and Iron Oxide. [New York, N.Y.?]: [publisher not identified], 2015.

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15

Giménez, Maria Sofia. Advances in chemistry and biology of nitric oxide. Kerala, India: Research Signpost, 2007.

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16

Jobe, David James. Iron oxide redox chemistry and nuclear fuel disposal. Pinawa, Man: Whiteshell Laboratories, 1997.

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17

Zvi, Rappoport, and Liebman Joel F, eds. The chemistry of hydroxylamines, oximes and hydroxamic acids. Chichester, England: Wiley, 2008.

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18

1936-, Nowotny Janusz, and Dufour Louis-Claude, eds. Surface and near-surface chemistry of oxide materials. Amsterdam: Elsevier, 1988.

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19

Zvi, Rappoport, and Liebman Joel F, eds. The chemistry of hydroxylamines, oximes and hydroxamic acids. Chichester, England: Wiley, 2008.

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20

Rappoport, Zvi, and Joel F. Liebman. The chemistry of hydroxylamines, oximes and hydroxamic acids. Chichester, England: Wiley, 2008.

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21

N, Sheppard, ed. Molecular spectroscopy of oxide surfaces. Chichester, West Sussex, England: Wiley, 2003.

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22

Leshem, Ya'acov Y. Nitric oxide in plants: Occurrence, function and use. Dordrecht: Kluwer Academic Publishers, 2000.

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23

Leshem, Y. Y. Nitric oxide in plants: Occurrence, function and use. [S.l.]: Springer, 2013.

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24

International Meeting on the Biology of Nitric Oxide (2nd 1991 London, England). The biology of nitric oxide: Proceedings of the 2nd International Meeting on the Biology of Nitric Oxide, London. Edited by Moncada S. London: portland Press, 1992.

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25

D, Maines Mahin, ed. Nitric oxide synthase: Characterization and functional analysis. San Diego: Academic Press, 1996.

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26

Shand, Mark A. The chemistry and technology of magnesia. Hoboken, N.J: John Wiley & Sons, 2006.

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27

Shand, Mark A. The chemistry and technology of magnesia. Hoboken, NJ: Wiley-Interscience, 2006.

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28

service), ScienceDirect (Online, ed. Chemistry on modified oxide and phosphate surfaces: Fundamentals and applications. Amsterdam: Elsevier/Academic Press, 2009.

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29

Chemistry of nanocrystalline oxide materials: Combustion synthesis, properties and applications. Singapore: World Scientific, 2008.

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30

Barrett, Edward Patrick Stephen. Aspects of the chemistry of metal oxide semiconductor gas sensors. Uxbridge: Brunel University, 1986.

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31

1940-, Raveau B., ed. Crystal chemistry of high Tc superconducting copper oxides. Berlin: Springer-Verlag, 1991.

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32

Dzombak, David A. Surface complexation modeling: Hydrous ferric oxide. New York: Wiley, 1990.

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33

K, Motzfeldt, ed. Carbothermal production of aluminium: Chemistry and technology. Düsseldorf: Aluminium, 1989.

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34

Bunker, Bruce C., and William H. Casey. The Aqueous Chemistry of Oxides. Oxford University Press, 2016. http://dx.doi.org/10.1093/oso/9780199384259.001.0001.

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The Aqueous Chemistry of Oxides is a single-volume text that encapsulates all of the critical issues associated with how oxide materials interact with aqueous solutions. It serves as a central reference for academics working with oxides in the contexts of geology, various types of inorganic chemistry, and materials science. The text also has utility for professionals working with industrial applications in which oxides are either prepared or must perform in aqueous environments. The volume is organized into five key sections. Part One features two introductory chapters, intended to introduce the mutual interests of engineers, chemists, geologists, and industrial scientists in the physical and chemical properties of oxide materials. Part Two provides the essential and fundamental principles that are critical to understanding most of the major reactions between water and oxides. Part Three deals with the synthesis of oxide materials in aqueous media. Part Four deals with oxide-water reactions and their environmental and technological impacts, and Part Five is devoted to other types of relevant reactions. The Aqueous Chemistry of Oxides is the first book that provides a comprehensive summary of all of the critical reactions between oxides and water in a single volume. As such, it ties together a wide range of existing books and literature into a central location that provides a key reference for understanding and accessing a broad range of more specialized topics. The book contain over 300 figures and tables.
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35

Jolivet, Jean-Pierre. Metal Oxide Nanostructures Chemistry. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780190928117.001.0001.

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This much-anticipated new edition of Jolivet's work builds on the edition published in 2000. It is entirely updated, restructured and increased in content. The book focuses on the formation by techniques of green chemistry of oxide nanoparticles having a technological interest. Jolivet introduces the most recent concepts and modelings such as dynamics of particle growth, ordered aggregation, ionic and electronic interfacial transfers. A general view of the metal hydroxides, oxy-hydroxides and oxides through the periodic table is given, highlighting the influence of the synthesis conditions on crystalline structure, size and morphology of nanoparticles. The formation of aluminum, iron, titanium, manganese and zirconium oxides are specifically studied. These nanomaterials have a special interest in many technological fields such as ceramic powders, catalysis and photocatalysis, colored pigments, polymers, cosmetics and also in some biological or environmental phenomena.
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36

Hollenberg, Leland J., Roberts Julian L. Jr, and James M. Postma. Atmospheric Chemistry of Nitric Oxide. Worth Publishers, Incorporated, 2000.

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37

Wingrave, James A. Oxide Surfaces. Taylor & Francis Group, 2019.

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38

Oxide Surfaces. Taylor & Francis Group, 2019.

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39

Wingrave, James A. Oxide Surfaces. Taylor & Francis Group, 2019.

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40

Wingrave, James A. Oxide Surfaces. Taylor & Francis Group, 2019.

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41

Wingrave, James A. Oxide Surfaces. Taylor & Francis Group, 2020.

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42

Galvan, Carmen. Zinc Oxide: Production, Properties and Applications. Nova Science Publishers, Incorporated, 2020.

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43

Hermansen, Anton E. Aluminium Oxide: Structure, Production and Applications. Nova Science Publishers, Incorporated, 2020.

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44

Hermansen, Anton E. Aluminium Oxide: Structure, Production and Applications. Nova Science Publishers, Incorporated, 2020.

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45

Noguera, Claudine. Physics and Chemistry at Oxide Surfaces. Cambridge University Press, 2009.

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46

Noguera, Claudine. Physics and Chemistry at Oxide Surfaces. Cambridge University Press, 2005.

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47

Noguera, Claudine. Physics and Chemistry at Oxide Surfaces. Cambridge University Press, 2011.

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48

Kumar, Challa. Metal Oxide Nanomaterials: Chemistry in Practice. de Gruyter GmbH, Walter, 2020.

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49

Yamamoto, John W. Goodby, Bruce Dunn, and A. R. West. Solid Oxide Ion Conductors. University of Cambridge ESOL Examinations, 1999.

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50

Mathur, Sanjay, Andrei Kolmakov, and Michael A. Carpenter. Metal Oxide Nanomaterials for Chemical Sensors. Springer, 2012.

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