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1

Pawlik, Piotr. Rola składu chemicznego i procesu wytwarzania w kształtowaniu właściwości magnetycznych masywnych amorficznych i nanokrystalicznych stopów żelaza. Częstochowa: Wydawn. Wydz. Inżynierii Procesowej, Materiałowej i Fizyki Stosowanej Politechniki Częstochowskiej, 2011.

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2

Bulk metallic glasses. Hauppauge, N.Y: Nova Science Publishers, 2011.

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3

Ul-Haq, Izhar. Magnetic and transport properties of canonical spin glasses. Salford: University of Salford, 1988.

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4

Tellurite glasses handbook: Physical properties and data. Boca Raton, Fla: CRC Press, 2002.

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5

Haase, W. Relaxation Phenomena: Liquid Crystals, Magnetic Systems, Polymers, High-Tc Superconductors, Metallic Glasses. Berlin, Heidelberg: Springer Berlin Heidelberg, 2003.

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6

Tellurite glasses handbook: Physical properties and data. 2nd ed. Boca Raton, FL: Taylor & Francis, 2011.

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7

Trygg, Joakim. First principles studies of magnetic and structural properties of metallic systems. Uppsala: Acta Universitatis Upsaliensis, 1995.

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8

Burzo, E. Magnetic Properties of Non-Metallic Inorganic Compounds Based on Transition Elements. Edited by H. P. J. Wijn. Berlin, Heidelberg: Springer Berlin Heidelberg, 2017. http://dx.doi.org/10.1007/978-3-662-49337-3.

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9

Moskalenko, V. A. K teorii metallicheskikh spinovykh stekol. Kishinev: "Shtiint͡s︡a", 1985.

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10

Dugdale, J. S. The electrical properties of disordered metals. Cambrige: Cambridge University Press, 1995.

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11

Mi͡alikgulyev, G. Magnitnye i ėlektricheskie svoĭstva plenok upori͡adochivai͡ushchikhsi͡a splavov. Ashkhabad: Ylym, 1985.

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12

Glassy Metals: Magnetic Chemical and Structural Properties. Taylor & Francis Group, 2017.

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13

K, Varga L., and Magyar Tudományos Akadémia. Központi Fizikai Kutató Intézet., eds. Effect of metalloid content on the electrical resistivity properties of iron-metalloid type metallic glasses. Budapest: Hungarian Academy of Sciences, Central Research Institute for Physics, 1985.

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14

Huang, Hu, ed. Metallic Glasses - Properties and Processing. InTech, 2018. http://dx.doi.org/10.5772/intechopen.72335.

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15

Movahedi, Behrooz, ed. Metallic Glasses - Formation and Properties. InTech, 2016. http://dx.doi.org/10.5772/61764.

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16

1942-, Capellmann H., and Campbell I. A, eds. Metallic magnetism. Berlin: Springer-Verlag, 1987.

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17

El-Mallawany, Raouf A. H. Tellurite Glasses Handbook: Physical Properties and Data. CRC, 2001.

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18

1930-, Bennett L. H., and Watson R. E, eds. Magnetic multilayers. Singapore: World Scientific, 1994.

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19

W, Haase, and Wróbel S, eds. Relaxation phenomena: Liquid crystals, magnetic systems, polymers, high-Tc superconductors, metallic glasses. Berlin: Springer, 2003.

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20

de, Jongh L. J., ed. Magnetic properties of layered transition metal compounds. Dordrecht: Kluwer Academic, 1990.

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21

Jongh, L. J. de. Magnetic Properties of Layered Transition Metal Compounds. Springer, 2011.

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22

Wuttig, Matthias, and X. Liu. Ultrathin Metal Films: Magnetic and Structural Properties. Springer, 2010.

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23

(Editor), B. Heinrich, A. Bland (Editor), and J. A. C. Bland (Editor), eds. Ultrathin Magnetic Structures II: Measurement Techniques and Novel Magnetic Properties. Springer-Verlag Telos, 1994.

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24

Glassy And Amorphous Materials Processes Kinetics By Thermal Analysis. Springer, 2012.

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25

J.A.C. Bland (Editor) and Bretislav Heinrich (Editor), eds. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer, 2005.

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26

J.Anthony C. Bland (Editor) and Bretislav Heinrich (Editor), eds. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer, 1994.

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27

Tokura, Yoshinori, Ramamoorthy Ramesh, Michael F. Hundley, and Janice H. Nickel. Science and Technology of Magnetic Oxides: Volume 494. University of Cambridge ESOL Examinations, 2014.

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28

Esther, Belin-Ferré, Materials Research Society, Materials Research Society Meeting, Symposium on Quasicrystals--Preparation, Properties and Applications (3rd : 2003 Boston,Massachusetts), and Symposium on Amorphous and Nanocrystalline Metals (2003 : Boston, Massachusetts), eds. Quasicrystals 2003--preparation, properties and applications: Symposium held December 1-3, 2003, Boston, Massachusetts, U.S.A. Warrendale, Pennsylvania: Materials Research Society, 2004.

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29

F, Hundley Michael, ed. Science and technology of magnetic oxides: Symposium held December 1-4, 1997, Boston, Massachusetts, U.S.A. Warrendale, Pa: Materials Research Society, 1998.

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30

(Editor), Michael F. Hundley, J. H. Nickel (Editor), R. Ramesh (Editor), and Y. Tokura (Editor), eds. Science and Technology of Magnetic Oxides: Symposium Held December 1-4, 1997, Boston, Massachusetts, U.S.A (Materials Research Society Symposia Proceedings, V. 494.). Materials Research Society, 1998.

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31

1958-, Bland A., and Heinrich B. 1940-, eds. Ultrathin magnetic structures. Berlin: Springer, 1994.

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32

Ultrathin Metal Films: Magnetic and Structural Properties (Springer Tracts in Modern Physics). Springer, 2005.

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33

N, Goshchit͡s︡kiĭ B., Gelʹd P. V, and Institut fiziki metallov (Akademii͡a︡ nauk SSSR), eds. Struktura i magnitnye svoĭstva okisnykh magnetikov, obluchennykh bystrymi neĭtronami. Moskva: "Nauka", 1986.

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34

Ivan, Nedkov, Ausloos M. 1943-, and NATO Advanced Research Workshop on Ferrimagnetic Nano-crystalline and Thin Film Magnetooptical and Microwave Materials (1998 : Sozopol, Bulgaria), eds. Nano-crystalline and thin film mangnetic oxides. Dordrecht: Kluwer Academic Publishers, 1999.

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35

Nano-Crystalline and Thin Film Magnetic Oxides (NATO Science Partnership Sub-Series: 3:). Springer, 1999.

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36

Ellison, Michael J. The spin-glass state in Cu2șMnAl. 1986.

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37

Ellison, Michael J. The spin-glass state in Cu2șMnAl. 1986.

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38

1991 Annual Book of Astm Standards: Section 3: Metals Test Methods and Analytical Procedures: Vol 03.04: Magnetic Properties, Metallic Materials f. Amer Society for Testing &, 1991.

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39

American Society for Testing and Materials. Annual Book of Astm Standards, 1989: Section 3 Metals Test Methods and Analytical Procedures: Vol 03.04 Magnetic Properties; Metallic Materials for. Amer Society for Testing &, 1989.

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40

Wijn, H. P. Magnetic Properties of Non-Metallic Inorganic Compounds Based on Transition Elements Subvolume J2: Halides (Landolt-Bornstein, Vol 27, Group III : S). Springer-Verlag Berlin and Heidelberg GmbH & Co. K, 1995.

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41

(Editor), L. C. Gupta, and M. S. Multani (Editor), eds. Superconductivity (Frontiers in Solid State Sciences). World Scientific Publishing, 1993.

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42

C, Gupta L., and Multani M. S, eds. Selected topics in magnetism. Singapore: World Scientific, 1993.

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43

C, Gupta L., and Multani M. S, eds. Selected topics in superconductivity. Singapore: World Scientific, 1993.

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44

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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45

Pirota, Kleber Roberto, Angela Knobel, Manuel Hernandez-Velez, Kornelius Nielsch, and Manuel Vázquez. Magnetic nanowires: Fabrication and characterization. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.22.

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This article describes the fabrication and characterization of magnetic nanowires, focusing on the magnetic properties of patterned arrays of metallic magnetic nanowires electrodeposited into the pores of anodized-alumina membranes. It also discusses the complex magnetization processes, both in isolated nanowires and in collectively patterned arrays. After providing an overview of the state-of-the-art on fabrication techniques of nanowires, the article considers the microstructure of magnetic nanowires and the magnetic properties of single nanowires. It then examines the collective behavior of arrays where the interactions among the magnetic entities play an important role, along with the transport properties of magnetic nanowires, the temperature-dependent effects (such as magnetoelastic-induced anisotropy), and the dynamic properties of magnetization such as ferromagnetic resonance characteristics and spin-wave excitations in ferromagnetic nanowires. Finally, it presents an overview of future research directions.
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46

M, Hong, Gubser D. U. 1940-, Wolf Stuart A, TMS Electronic Device Materials Committee., American Society for Metals. Electrical, Magnetic, and Optical Phenomena Committee., and Metallurgical Society (U.S.). Meeting, eds. Metallic multi-layers and epitaxy: Proceedings of a symposium co-sponsored by the TMS Electronic Device Materials Committee (EDMC), and the ASM-MSD Electrical, Magnetic, and Optical Phenomena Activity (EMOP), held at the Annual Meeting of the Metallurgical Society in Denver, Colorado, February 24-25, 1987. Warrendale, Pa: The Society, 1988.

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47

Astm. 1993 Annual Book of Astm Standards: Section 3 : Metals Test Methods and Analytical Procedures : Volume 3.04 : Magnetic Properties; Metallic Materia (Annual Book of a S T M Standards Volume 0304). American Society for Testing & Materials, 1993.

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48

1992 Annual Book of Astm Standards: Section 3 Metals Test Methods and Analytical Procedures : Vol. 0304 Magnetic Properties; Metallic Materials for (Annual Book of a S T M Standards Volume 0304). American Society for Testing & Materials, 1992.

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49

1994 Annual Book of Astm Standards: Section 3 : Metals Test Methods and Analytical Procedures : Vol 3.04 : Magnetic Properties; Metallic Materials F (Annual Book of a S T M Standards Volume 0304). Astm Intl, 1994.

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50

Enoki, Toshiaki, Morinobu Endo, and Masatsugu Suzuki. Graphite Intercalation Compounds and Applications. Oxford University Press, 2003. http://dx.doi.org/10.1093/oso/9780195128277.001.0001.

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Graphite intercalation compounds are a new class of electronic materials that are classified as graphite-based host guest systems. They have specific structural features based on the alternating stacking of graphite and guest intercalate sheets. The electronic structures show two-dimensional metallic properties with a large variety of features including superconductivity. They are also interesting from the point of two-dimensional magnetic systems. This book presents the synthesis, crystal structures, phase transitions, lattice dynamics, electronic structures, electron transport properties, magnetic properties, surface phenomena, and applications of graphite intercalation compounds. The applications covered include batteries, highly conductive graphite fibers, exfoliated graphite and intercalated fullerenes and nanotubes.
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