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1

Bhargava, Gagan Kumar, Sumit Bhardwaj, Mahavir Singh, and Khalid Mujasam Batoo, eds. Ferrites and Multiferroics. Singapore: Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-7454-9.

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2

Algueró, Miguel, J. Marty Gregg, and Liliana Mitoseriu, eds. Nanoscale Ferroelectrics and Multiferroics. Chichester, UK: John Wiley & Sons, Ltd, 2016. http://dx.doi.org/10.1002/9781118935743.

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3

Bochenek, Dariusz. Technologia wytwarzania i właściwości multiferroikowej ceramiki typu PFN: Manufacturing technology and properties of the multiferroic PFN ceramics = [Tekhnologii︠a︡ poluchenii︠a︡ i svoĭstva mulʹtiferroika na primere keramiki tipa PFN]. Katowice: Wydawnictwo Uniwersytetu Ślaskiego, 2012.

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4

Wiraka, Haradewa Siṅgha, and Wolfgang Kleemann. Ferroics and multiferroics: Special topic volume with invited peer reviewed papers only. Zurich: Trans Tech Publications, 2012.

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5

Oliveira, Antonella Carvalho de, ed. Refinamento estrutural e cálculos de densidade eletrônica no sistema multiferróico (Bi1-xNdx)(Fe1-yCoy)O3: -. Brasil: Atena Editora, 2023.

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6

Pavlov, Sergey. Methods of catastrophe theory in the phenomenology of phase transitions. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1004276.

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The monograph is devoted to describing the methods of catastrophe theory and building on the basis of these methods, phenomenological models of phase transitions in solids. Methods of constructing structurally stable normal forms of functions, including functions that are imposed on the symmetry conditions. The classification of phenomenological models of phase transitions for two interacting one-component order parameter, two-component and three-component order parameters the number of control parameters varied in the experiment. Theoretical dependence of the anomalies of the physical properties of the models are compared with experimental data in ferroelectrics, magnetic materials, solid solutions of rare earth metals, multiferroics and other solids that are experiencing phase transitions. For professionals in the field of solid state physics and phase transitions.
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7

Multiferroic Materials. Materials Research Forum LLC, 2023.

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8

Wang, Junling. Multiferroic Materials. Taylor & Francis Group, 2021.

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9

Multiferroic Materials. Materials Research Forum LLC, 2023.

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10

Multifunctional Multiferroic Materials [Working Title]. IntechOpen, 2022. http://dx.doi.org/10.5772/intechopen.97901.

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11

Liu, Ming, and Ziyao Zhou. Integrated Multiferroic Heterostructures and Applications. Wiley-VCH Verlag GmbH, 2019.

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12

Liu, Ming, and Ziyao Zhou. Integrated Multiferroic Heterostructures and Applications. Wiley & Sons, Incorporated, John, 2019.

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13

Liu, Ming, and Ziyao Zhou. Integrated Multiferroic Heterostructures and Applications. Wiley & Sons, Incorporated, John, 2019.

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14

Liu, Ming, and Ziyao Zhou. Integrated Multiferroic Heterostructures and Applications. Wiley & Sons, Incorporated, John, 2019.

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15

Liu, Ming, and Ziyao Zhou. Integrated Multiferroic Heterostructures and Applications. Wiley & Sons, Incorporated, John, 2019.

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16

Wang, Junling. Multiferroic Materials: Properties, Techniques, and Applications. Taylor & Francis Group, 2016.

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17

Korotcenkov, Ghenadii, and Biljana Stojanovic. Magnetic, Ferroelectric, and Multiferroic Metal Oxides. Elsevier Science & Technology Books, 2018.

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18

Magnetic, Ferroelectric, and Multiferroic Metal Oxides. Elsevier, 2018. http://dx.doi.org/10.1016/c2016-0-00851-3.

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19

Korotcenkov, Ghenadii, and Biljana D. Stojanovic. Magnetic, Ferroelectric, and Multiferroic Metal Oxides. Elsevier, 2018.

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20

Wang, Junling. Multiferroic Materials: Properties, Techniques, and Applications. Taylor & Francis Group, 2016.

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21

Wang, Junling. Multiferroic Materials: Properties, Techniques, and Applications. Taylor & Francis Group, 2016.

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22

Wang, Junling. Multiferroic Materials: Properties, Techniques, and Applications. Taylor & Francis Group, 2016.

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23

Multiferroic Materials: Properties, Techniques, and Applications. Taylor & Francis Group, 2016.

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24

Nagaosa, N. Multiferroics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.003.0010.

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This chapter delves into the physics of multiferroics, the recent developments of which are discussed here from the viewpoint of the spin current and “emergent electromagnetism” for constrained systems. It presents the three sources of U(1) gauge fields, namely, the Berry phase associated with the noncollinear spin structure, the spin-orbit interaction (SOI), and the usual electromagnetic field. The chapter reviews multiferroic phenomena in noncollinear magnets from this viewpoint and discusses theories of multiferroic behavior of cycloidal helimagnets in terms of the spin current or vector spin chirality. Relativistic SOI leads to a coupling between the spin current and the electric polarization, and hence the ferroelectric and dielectric responses are a new and important probe for the spin states and their dynamical properties. Microscopic theories of the ground state polarization for various electronic configurations, collective modes including the electromagnon, and some predictions including photoinduced chirality switching are discussed with comparison to experimental results.
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25

Kimura, Hideo, Zhenxiang Cheng, and Tingting Jia. Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications. Elsevier, 2019.

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26

Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications. Elsevier, 2019. http://dx.doi.org/10.1016/c2017-0-01897-9.

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27

Kimura, Hideo, Zhenxiang Cheng, and Tingting Jia. Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications. Elsevier, 2019.

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28

Cazayous, Maximilien, and Ricardo P. S. M. Lobo. Multiferroic Materials: Properties, Interactions, and the Physics Behind. Wiley & Sons, Limited, John, 2016.

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29

Cazayous, Maximilien, and Ricardo P. S. M. Lobo. Multiferroic Materials: Properties, Interactions, and the Physics Behind. Wiley & Sons, Incorporated, John, 2016.

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30

Cheng, Zhenxiang, Changhong Yang, and Chunchang Wang, eds. Nanoscale Ferroic Materials—Ferroelectric, Piezoelectric, Magnetic, and Multiferroic Materials. MDPI, 2022. http://dx.doi.org/10.3390/books978-3-0365-5944-5.

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31

Cano, Andres, Dennis Meier, and Morgan Trassin, eds. Multiferroics. De Gruyter, 2021. http://dx.doi.org/10.1515/9783110582130.

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32

Visakh, P. M., and Raneesh Balakrishnan. Nanostructured Multiferroics. Wiley & Sons, Incorporated, John, 2021.

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33

Visakh, P. M., and Raneesh Balakrishnan. Nanostructured Multiferroics. Wiley & Sons, Incorporated, John, 2021.

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34

Visakh, P. M., and Raneesh Balakrishnan. Nanostructured Multiferroics. Wiley & Sons, Limited, John, 2021.

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35

M, Visakh P., and Raneesh Balakrishnan. Nanostructured Multiferroics. Wiley & Sons, Limited, John, 2021.

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36

Visakh, P. M., and Raneesh Balakrishnan. Nanostructured Multiferroics. Wiley & Sons, Incorporated, John, 2021.

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37

Virk, Hardev Singh, and Wolfgang Kleemann. Ferroics and Multiferroics. Trans Tech Publications, Limited, 2012.

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38

Virk, Hardev Singh, and Wolfgang Kleemann. Ferroics and Multiferroics. Trans Tech Publications Ltd, 2012. http://dx.doi.org/10.4028/b-bj0my6.

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39

Meier, Dennis, Andres Cano, and Morgan Trassin. Multiferroics: Fundamentals and Applications. de Gruyter GmbH, Walter, 2021.

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40

Meier, Dennis, Andres Cano, and Morgan Trassin. Multiferroics: Fundamentals and Applications. de Gruyter GmbH, Walter, 2021.

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41

Meier, Dennis, Andres Cano, and Morgan Trassin. Multiferroics: Fundamentals and Applications. de Gruyter GmbH, Walter, 2021.

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42

Ramamoorthy, Ramesh, and Lane Martin. Multiferroics: Synthesis, Characterization and Applications. Wiley & Sons, Limited, John, 2012.

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43

Ferrites and Multiferroics: Fundamentals to Applications. Springer, 2022.

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44

Ferrites and Multiferroics: Fundamentals to Applications. Springer Singapore Pte. Limited, 2022.

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45

Alguero, Miguel, J. Marty Gregg, and Liliana Mitoseriu. Nanoscale Ferroelectrics and Multiferroics: Key Processes and Characterization Issues, and Nanoscale Effects. Wiley & Sons, Limited, John, 2016.

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46

Alguero, Miguel, J. Marty Gregg, and Liliana Mitoseriu. Nanoscale Ferroelectrics and Multiferroics: Key Processes and Characterization Issues, and Nanoscale Effects. Wiley & Sons, Limited, John, 2016.

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47

Maruchiferoikusu: Busshitsuchū no denjikigaku no shintenkai = Multiferroics : new development of electromagnetism in materials. Tōkyō-to Bunkyō-ku: Kyōritsu Shuppan, 2014.

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48

Alguero, Miguel, J. Marty Gregg, and Liliana Mitoseriu. Nanoscale Ferroelectrics and Multiferroics: Key Processing and Characterization Issues, and Nanoscale Effects, 2 Volumes. Wiley & Sons, Incorporated, John, 2016.

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49

Alguero, Miguel, J. Marty Gregg, and Liliana Mitoseriu. Nanoscale Ferroelectrics and Multiferroics: Key Processing and Characterization Issues, and Nanoscale Effects, 2 Volumes. Wiley & Sons, Incorporated, John, 2016.

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50

Cuartero Yagüe, Vera. Evolución de las propiedades multiferroicas del TbMnO3 mediante la dilución de la subred de Mn. Prensas Universitarias de la Universidad de Zaragoza, 2010. http://dx.doi.org/10.26754/uz.978-84-15538-37-0.

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