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1

Marie-Isabelle, Baraton, ed. Synthesis, functionalization and surface treatment of nanoparticles. American Scientific Publishers, 2003.

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2

Hinklin, Tom, and Kathy Lu, eds. Processing of Nanoparticle Structures and Composites. John Wiley & Sons, Inc., 2009. http://dx.doi.org/10.1002/9780470551523.

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3

Casati, Riccardo. Aluminum Matrix Composites Reinforced with Alumina Nanoparticles. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-27732-5.

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4

Rudolph, Martin. Nanoparticle-polymer-composites: The solution and spray drying process with an emphasis on colloidal interactions. Technische Universität Bergakademie, 2013.

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5

Roca, Alejandro G., Paolo Mele, Hanae Kijima-Aoki, et al., eds. Surfaces and Interfaces of Metal Oxide Thin Films, Multilayers, Nanoparticles and Nano-composites. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-74073-3.

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6

Sprenger, Stephan. The Effects of Silica Nanoparticles in Toughened Epoxy Resins and Fiber-Reinforced Composites. Carl Hanser Verlag GmbH & Co. KG, 2016. http://dx.doi.org/10.1007/978-1-56990-628-6.

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7

Nechaev, Vladimir, Andrey Shuba, Stanislav Gridnev, and Vitaliy Topolov. Dimensional effects in phase transitions and physical properties of ferroics. INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1898400.

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The monograph presents mathematical methods and a set of mathematical models describing, within the framework of phenomenological theory, phase transitions in 0D-. 1D-, 2D-, 3D-dimensional ferroelectrics, ferroelastics, ferromagnets and their static and dynamic physical properties near the phase transition point. The influence of the parameters characterizing the ferroic sample and its interaction with the environment on the features of the phase transition, phase transition temperature shift, heat capacity, generalized susceptibilities is analyzed. Mathematical models of multilayer thin-film
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8

Materials Science & Technology Conference (2008 Pittsburgh, Pa.). Processing of nanoparticle structures and composites: A collection of papers presented at the 2008 Materials Science and Technology Conference (MS&T08) October 5-9, 2008, Pittsburgh, Pennsylvania. J. Wiley & Sons, 2009.

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9

Baraton, Marie-Isabelle. Synthesis, Functionalization and Surface Treatment of Nanoparticles. American Scientific Publishers, 2002.

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10

(Editor), Marie-Isabelle Baraton, and Irina V. Uvarova (Editor), eds. Functional Gradient Materials and Surface Layers Prepared by Fine Particles Technology (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2001.

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11

Capek, Ignác. Noble Metal Nanoparticles: Preparation, Composite Nanostructures, Biodecoration and Collective Properties. Springer, 2017.

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12

Capek, Ignác. Noble Metal Nanoparticles: Preparation, Composite Nanostructures, Biodecoration and Collective Properties. Springer, 2017.

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13

Capek, Ignác. Noble Metal Nanoparticles: Preparation, Composite Nanostructures, Biodecoration and Collective Properties. Springer, 2018.

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14

Suib, Steven L. New and Future Developments in Catalysis: Catalysis by Nanoparticles. Elsevier Science & Technology Books, 2013.

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15

Suib, Steven L. New and Future Developments in Catalysis: Catalysis by Nanoparticles. Elsevier, 2013.

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16

Nanoparticle-Based Polymer Composites. Elsevier, 2022. http://dx.doi.org/10.1016/c2020-0-01662-2.

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17

Polymer Composites with Functionalized Nanoparticles. Elsevier, 2019. http://dx.doi.org/10.1016/c2017-0-00517-7.

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18

Parameswaranpillai, Jyotishkumar, Sanjay Mavinkere Rangappa, Suchart Siengchin, M. Ozgur Seydibeyoglu, and Yashas Gowda T. G. Metal Nanoparticle-Based Polymer Composites. Woodhead Publishing, 2022.

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19

Parameswaranpillai, Jyotishkumar, Sanjay Mavinkere Rangappa, Suchart Siengchin, M. Ozgur Seydibeyoglu, and Yashas Gowda T. G. Metal Nanoparticle-Based Polymer Composites. Elsevier Science & Technology, 2022.

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20

Lu, Kathy, and Tom Hinklin. Processing of Nanoparticle Structures and Composites. Wiley & Sons, Incorporated, John, 2009.

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21

Mahfuz, Hassan. Nanoparticle Reinforced Composites for Structural Applications. World Scientific Publishing Co Pte Ltd, 2011.

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22

Lu, Kathy, and Tom Hinklin. Processing of Nanoparticle Structures and Composites. Wiley & Sons, Incorporated, John, 2009.

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23

Processing of Nanoparticle Structures and Composites. Wiley & Sons, Incorporated, John, 2009.

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24

Casati, Riccardo. Aluminum Matrix Composites Reinforced with Alumina Nanoparticles. Springer International Publishing AG, 2016.

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25

Casati, Riccardo. Aluminum Matrix Composites Reinforced with Alumina Nanoparticles. Springer London, Limited, 2015.

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26

Chen, Yuwei, and Yumin Xia, eds. Novel Nanoparticles and Their Enhanced Polymer Composites. MDPI, 2024. http://dx.doi.org/10.3390/books978-3-7258-0549-5.

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27

Composite Nanoadsorbents. Elsevier, 2018.

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28

Majka, Tomasz M., and Krzysztof Pielichowski. Polymer Composites with Functionalized Nanoparticles: Synthesis, Properties, and Applications. Elsevier Science & Technology, 2018.

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29

Majka, Tomasz M., and Krzysztof Pielichowski. Polymer Composites with Functionalized Nanoparticles: Synthesis, Properties, and Applications. Elsevier Science & Technology, 2018.

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30

Suib, Steven L. New and Future Developments in Catalysis: Hybrid Materials, Composites, and Organocatalysts. Elsevier, 2013.

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31

Suib, Steven L. New and Future Developments in Catalysis: Hybrid Materials, Composites, and Organocatalysts. Elsevier Science & Technology Books, 2013.

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32

Koo, Joseph H. Polymer Nanocomposites (Mcgraw-Hill Nanoscience and Technology Series). McGraw-Hill Professional, 2006.

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33

Pandey, Jitendra K., Hitoshi Takagi, Antonio Norio Nakagaito, and Hyun-Joong Kim. Handbook of Polymer Nanocomposites. Processing, Performance and Application : Volume C: Polymer Nanocomposites of Cellulose Nanoparticles. Springer, 2014.

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34

Pandey, Jitendra K., Hitoshi Takagi, Antonio Norio Nakagaito, and Hyun-Joong Kim. Handbook of Polymer Nanocomposites. Processing, Performance and Application : Volume C: Polymer Nanocomposites of Cellulose Nanoparticles. Springer, 2016.

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35

Effects of Silica Nanoparticles in Toughened Epoxy Resins and Fiber-Reinforced Composites. Hanser Verlag, Carl, 2015.

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36

Sprenger, Stephan. Effects of Silica Nanoparticles in Toughened Epoxy Resins and Fiber-Reinforced Composites. Hanser GmbH & Company, Carl, 2015.

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37

Keane, Lorraine. Tuning structure to optimise charge transport: Nanoparticle composites, microcrystals and metallopolymers. 2003.

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38

Suib, Steven L. New and Future Developments in Catalysis: Activation of Carbon Dioxide. Elsevier Science & Technology Books, 2013.

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39

Suib, Steven L. New and Future Developments in Catalysis: Solar Photocatalysis. Elsevier, 2013.

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40

Suib, Steven L. New and Future Developments in Catalysis: Activation of Carbon Dioxide. Elsevier, 2013.

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41

Suib, Steven L. New and Future Developments in Catalysis: Solar Photocatalysis. Elsevier Science & Technology Books, 2013.

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42

Suib, Steven L. New and Future Developments in Catalysis: Catalytic Biomass Conversion. Elsevier Science & Technology Books, 2013.

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43

Suib, Steven L. New and Future Developments in Catalysis: Catalytic Biomass Conversion. Elsevier, 2013.

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44

Suib, Steven L. New and Future Developments in Catalysis: Batteries, Hydrogen Storage and Fuel Cells. Elsevier, 2013.

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45

Suib, Steven L. New and Future Developments in Catalysis: Catalysis for Remediation and Environmental Concerns. Elsevier, 2013.

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46

Suib, Steven L. New and Future Developments in Catalysis: Batteries, Hydrogen Storage and Fuel Cells. Elsevier Science & Technology Books, 2013.

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47

Suib, Steven L. New and Future Developments in Catalysis: Catalysis for Remediation and Environmental Concerns. Elsevier Science & Technology Books, 2013.

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48

Araújo, Ana Cláudia Vaz de. Síntese de nanopartículas de óxido de ferro e nanocompósitos com polianilina. Brazil Publishing, 2021. http://dx.doi.org/10.31012/978-65-5861-120-2.

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In this work magnetic Fe3O4 nanoparticles were synthesized through the precipitation method from an aqueous ferrous sulfate solution under ultrasound. A 23 factorial design in duplicate was carried out to determine the best synthesis conditions and to obtain the smallest crystallite sizes. Selected conditions were ultrasound frequency of 593 kHz for 40 min in 1.0 mol L-1 NaOH medium. Average crystallite sizes were of the order of 25 nm. The phase obtained was identified by X-ray diffractometry (XRD) as magnetite. Scanning electron microscopy (SEM) showed polydisperse particles with dimensions
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49

Mele, Paolo, Alejandro G. Roca, Hanae Kijima-Aoki, Elvira Fantechi, and Jana K. Vejpravova. Surfaces and Interfaces of Metal Oxide Thin Films, Multilayers, Nanoparticles and Nano-Composites: In Memory of Prof. Dr. Hanns-Ulrich Habermeier. Springer International Publishing AG, 2022.

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50

Mele, Paolo, Alejandro G. Roca, Hanae Kijima-Aoki, Elvira Fantechi, and Jana K. Vejpravova. Surfaces and Interfaces of Metal Oxide Thin Films, Multilayers, Nanoparticles and Nano-Composites: In Memory of Prof. Dr. Hanns-Ulrich Habermeier. Springer International Publishing AG, 2021.

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