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1

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

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2

Oxide semiconductors for solar energy conversion: Titanium dioxide. Boca Raton: CRC Press, 2012.

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3

Dobrovský, Ludovít. Desoxidace oceli manganem, křemíkem, hliníkem a titanem. Praha: Academia, 1990.

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4

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

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5

Valentine, Page C. The Gulf of Maine rutile province--accumulation of fine-grained, authigenic titanium oxide from sandstone and shale source rocks. [Denver, Colo.?]: Dept. of Interior, U.S. Geological Survey, 1989.

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6

A, Commeau Judith y Geological Survey (U.S.), eds. The Gulf of Maine rutile province--accumulation of fine-grained, authigenic titanium oxide from sandstone and shale source rocks. [Denver, Colo.?]: Dept. of Interior, U.S. Geological Survey, 1989.

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7

Shukri, Rashid Jaber Asa'd. Supported oxide catalysts: Cobalt oxide and molybdena on titania. Uxbridge: Brunel University, 1989.

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8

Buker, Regab Awad. Studies of the preparation and structure of bismuth molybdenum oxides and strontium iron titanium oxides. Birmingham: University of Birmingham, 1985.

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9

Augugliaro, Vincenzo. Clean by light irradiation: Practical applications of supported TiO₂. Cambridge: Royal Society of Chemistry, 2010.

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10

K, Castello Geri, ed. Handbook of photocatalysts: Preparation, structure, and applications. Hauppauge, N.Y: Nova Science Publishers, 2009.

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11

Tahir, Saad Flamerz. Structure and reactivity of titania-supported molybdenum and vanadium oxides. Uxbridge: Brunel University, 1987.

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12

United States. National Aeronautics and Space Administration., ed. Contact sensor attachment to titanium metal composites: Final report for NASA grant NCC3-189 ... [Washington, DC: National Aeronautics and Space Administration, 1997.

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13

Hudson, Melanie. Studies of the formation of homogeneous mixed silicon-titanium/zirconium oxides by the sol-gel route. Uxbridge: Brunel University, 1994.

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14

Azough, F. Microstructural development and microwave dielectric properties of ceramics in the system zirconia-titania-tin oxide. Manchester: UMIST, 1991.

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15

Weikle, Donald H. TiCl₄ as a source of TiO₂ particles for laser anemometry measurements in hot gas]. [Washington, D.C: National Aeronautics and Space Administration, 1990.

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16

Solid state chemistry and photocatalysis of titanium dioxide: Special topic volume with invited peer reviewed papers only. Stafa-Zurich: Trans Tech, 2010.

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17

Katsutoshi, Komeya, Matsuo Yohtaro, Goto Takashi, Nihon Seramikkusu Kyōkai y Nihon Gakujutsu Shinkōkai. Kōbutsu Shinkatsuyō Dai 124 Iinkai., eds. Innovation in ceramic science and engineering: Selected, peer reviewed papers from the 3rd International Symposium on Advanced Ceramics, Grand Copthorne Waterfront Hotel, December 11-15, 2006, Singapore. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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18

United States. National Aeronautics and Space Administration., ed. Burn rates of TiH₂/KClO₄/Viton and output testing of NASA SKD26100098-301 pressure cartridges. [Washington, DC]: National Aeronautics and Space Administration, 1993.

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19

Nowotny, Janusz. Oxide Semiconductors for Solar Energy Conversion: Titanium Dioxide. Taylor & Francis Group, 2017.

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20

Nowotny, Janusz. Oxide Semiconductors for Solar Energy Conversion: Titanium Dioxide. Taylor & Francis Group, 2016.

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21

Nowotny, Janusz. Oxide Semiconductors for Solar Energy Conversion: Titanium Dioxide. Taylor & Francis Group, 2016.

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22

Gunnarsson, Rickard. Titanium oxide nanoparticle production using high power pulsed plasmas. Linköping University Electronic Press, 2016. http://dx.doi.org/10.3384/lic.diva-128622.

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23

Kamat, Prashant V. y Masakazu Anpo. Environmentally Benign Photocatalysts: Applications of Titanium Oxide-Based Materials. Springer, 2010.

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24

Kamat, Prashant V. y Masakazu Anpo. Environmentally Benign Photocatalysts: Applications of Titanium Oxide-Based Materials. Springer, 2016.

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25

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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26

Stalder, Michael. Functional one-dimensional nanostructures of silicon oxide, titanium dioxide and platinum. 2007.

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27

The 2006-2011 World Outlook for Inorganic White Opaque Pigments Excluding Titanium Dioxide, Zinc Oxide, and Titanium Pigment Preparations. Icon Group International, Inc., 2005.

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28

Kong, X. Y., Y. C. Wang, X. F. Fan, G. F. Guo y L. M. Tong. Free-standing grid-like nanostructures assembled into 3D open architectures for photovoltaic devices. Editado por A. V. Narlikar y Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.22.

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This article describes three-dimensional open architectures with free-standing grid-like nanostructure arrays as photocatalytic electrodes for a new type of dye-sensitized solar cell. It introduces a novel technique for fabricating a series of semiconducting oxides with grid-like nanostructures replicated from the biotemplates. These semiconducting oxides, including n-type titanium dioxide or p-type nickel oxide nanogrids, were sensitized with the dye molecules, then assembled into 3D stacked-grid arrays on a flexible substrate by means of the Langmuir–Blodgett method or the ink-jet printing technique for the photocatalytic electrodes. The article first considers the fabrication of photoelectrodes with 2D grid-like nanostructures by means of the biotemplating approach before discussing the assembly and photophysicsof grid-like nanostructures into 3D open architectures for the photocatalytic electrodes.
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29

Review of the Alumina/Ag-Cu-Ti Active Metal Brazing Process. Taylor & Francis Group, 2018.

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30

Review of the Alumina/Ag-Cu-Ti Active Metal Brazing Process. Taylor & Francis Group, 2018.

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31

Kassam, Tahsin Ali. Review of the Alumina/Ag-Cu-Ti Active Metal Brazing Process. Taylor & Francis Group, 2018.

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32

Kassam, Tahsin Ali. Review of the Alumina/Ag-Cu-Ti Active Metal Brazing Process. Taylor & Francis Group, 2018.

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33

Alper, Allen M. High Temperature Oxides: Oxides of Rare Earths, Titanium, Zirconium, Hafnium, Niobium and Tantalum. Elsevier Science & Technology Books, 2013.

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34

Brown, Jerri. Titanium Dioxide: Chemical Properties, Applications, and Environmental Effects. Nova Science Publishers, Incorporated, 2014.

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35

Low, It-Meng, Hani Manssor Albetran, Victor Manuel de la Prida Pidal y Fong Kwong Yam. Nanostructured Titanium Dioxide in Photocatalysis. Jenny Stanford Publishing, 2021.

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36

Low, It-Meng, Hani Manssor Albetran, Victor Manuel de la Prida Pidal y Fong Kwong Yam. Nanostructured Titanium Dioxide in Photocatalysis. Jenny Stanford Publishing, 2021.

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37

Low, It-Meng, Hani Manssor Albetran, Victor Manuel de la Prida Pidal y Fong Kwong Yam. Nanostructured Titanium Dioxide in Photocatalysis. Jenny Stanford Publishing, 2021.

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38

Low, It-Meng, Hani Manssor Albetran, Victor Manuel de la Prida Pidal y Fong Kwong Yam. Nanostructured Titanium Dioxide in Photocatalysis. Jenny Stanford Publishing, 2021.

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39

The World Market for Titanium Oxides: A 2004 Global Trade Perspective. Icon Group International, Inc., 2005.

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40

Parker, Philip M. The 2007 Import and Export Market for Titanium Oxides in India. ICON Group International, Inc., 2006.

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41

Parker, Philip M. The 2007 Import and Export Market for Titanium Oxides in China. ICON Group International, Inc., 2006.

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42

Parker, Philip M. The World Market for Titanium Oxides: A 2007 Global Trade Perspective. ICON Group International, Inc., 2006.

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43

Nowotny, Maria K. y Janusz Nowotny. Solid State Chemistry and Photocatalysis of Titanium Dioxide. Trans Tech Publications, Limited, 2010.

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44

Parker, Philip M. The 2007 Import and Export Market for Titanium Oxides in United States. ICON Group International, Inc., 2006.

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45

TiCl₄ as a source of TiO₂ particles for laser anemometry measurements in hot gas. [Washington, D.C: National Aeronautics and Space Administration, 1990.

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46

Parker, Philip M. The 2007 Import and Export Market for Oxides of Zinc, Chromium, Manganese, Iron, Cobalt, Titanium, and Lead in China. ICON Group International, Inc., 2006.

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47

Parker, Philip M. The World Market for Oxides of Zinc, Chromium, Manganese, Iron, Cobalt, Titanium, and Lead: A 2007 Global Trade Perspective. ICON Group International, Inc., 2006.

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48

The World Market for Oxides of Zinc, Chromium, Manganese, Iron, Cobalt, Titanium, and Lead: A 2004 Global Trade Perspective. Icon Group International, Inc., 2005.

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49

Parker, Philip M. The 2007 Import and Export Market for Oxides of Zinc, Chromium, Manganese, Iron, Cobalt, Titanium, and Lead in India. ICON Group International, Inc., 2006.

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50

Parker, Philip M. The 2007 Import and Export Market for Oxides of Zinc, Chromium, Manganese, Iron, Cobalt, Titanium, and Lead in United States. ICON Group International, Inc., 2006.

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