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1

Czerwiński, Dariusz. Modelling the critical parameters of high temperature superconductor devices in transient states. Politechnika Lubelska, 2013.

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2

George C. Marshall Space Flight Center., ed. A study of enhancing critical current densities (JC) and critical temperature (TC) of high-temperature superconductors: Center Director's discretionary fund final report (project 90-N26). National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1992.

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3

Putzke, Carsten Matthias. Fermi Surface and Quantum Critical Phenomena of High-Temperature Superconductors. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-48646-8.

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4

International Workshop on Critical Current Limitations in High Temperature Superconductors (1991 Zaborów, Poland). Proceedings of the International Workshop on Critical Current Limitations in High Temperature Superconductors, Zaborów near Warsaw, Poland, September 10-13, 1991. Edited by Baran M, Gorzkowski W, and Szymczak H. World Scientific, 1992.

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5

Nobel Symposium (73rd 1988 Gräftåvallen, Sweden). Physics of low-dimensional systems: Proceedings of Nobel Symposium 73, Gräftåvallen, Sweden, June 6-11, 1988. Edited by Lundqvist Stig 1925- and Nilsson Nils Robert. Royal Swedish Academy of Sciences, 1989.

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6

Souta, Suzuki, and Fukuda Kouki, eds. MgB₂ superconductor research. Nova Science Publishers, 2008.

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7

Zhang, Wentao. Photoemission Spectroscopy on High Temperature Superconductor. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-32472-7.

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8

Neeraj, Khare, ed. Handbook of high-temperature superconductor electronics. Marcel Dekker, 2003.

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9

Souta, Suzuki, and Fukuda Kouki, eds. MgB₂ diboride (MgB2) superconductor research. Nova Science Publishers, 2009.

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10

1950-, Mensah Thomas O., ed. Superconductor engineering. American Institute of Chemical Engineers, 1992.

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11

Paranthaman, M. Parans, Paul N. Barnes, Bemhard Holzpfel, Yutaka Yamada, Kaname Matsumoto, and John K. F. Yau, eds. High-Temperature Superconductor Materials, Devices, and Applications. John Wiley & Sons, Inc., 2006. http://dx.doi.org/10.1002/9781118407165.

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12

Hein, Matthias. High-temperature-superconductor thin films at microwave frequencies. Springer, 1999.

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13

Li-Chun, Liáng, ed. YBCO superconductor research progress. Nova Science Publishers, 2008.

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14

Wingfield, Jonathan James. The microwave properties of high temperature superconductor single crystals. University of Birmingham, 1998.

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15

Kharel, Arish. Nonlinear microwave surface impedance of high temperature superconductor films. University of Birmingham, 1999.

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16

Styles, Iain Bruce. One hole in a high temperature superconductor: Fermi liquid? University of Birmingham, 2003.

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17

Connors, Sean Mark. Effects of high energy electron irradiation on a YBaCu0- high temperature superconductor. Naval Postgraduate School, 1991.

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18

Symposium A on High TC Superconductor Materials (1990 Strasbourg, France). High TC superconductor materials: Proceedings of Symposium A on High TC Superconductor Materials of the 1990 E-MRS spring conference, Strasbourg, France, 29 May-1 June 1990. North-Holland, 1990.

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19

Symposium E, "Materials for High-Temperature Superconductor Technologies" (2001 Boston, Mass.). Materials for High-Temperature Superconductor Technologies: Symposium held November 26-29, 2001, Boston, Massachusetts, U.S.A. Edited by Paranthaman M. P. Materials Research Society, 2002.

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20

1937-, Hatfield William E., Miller John H. 1957-, and American Chemical Society. North Carolina Section., eds. High-temperature superconducting materials: Preparations, properties, and processing. M. Dekker, 1988.

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21

Foulds, Stephen Anthony Lawrence. Magnetic flux noise in the high temperature superconductor Yttrium Barium Copper Oxide. University of Birmingham, 1994.

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22

R, Selim, Buoncristiani A. Martin, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Program., eds. A comparison of superconductor and manganin technology for electronic links used in space mission applications. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1993.

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23

Wolfe, Gregory John. Effects of large doses of high energy electrons on a TB CU 06+ high temperature superconductor. Naval Postgraduate School, 1989.

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24

Eliseo, DiRusso, Provenza A. J, and United States. National Aeronautics and Space Administration., eds. An active homopolar magnetic bearing with high temperature superconductor coils and ferromagnetic cores. National Aeronautics and Space Administration, 1995.

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25

Eliseo, DiRusso, Provenza A. J, and United States. National Aeronautics and Space Administration., eds. An active homopolar magnetic bearing with high temperature superconductor coils and ferromagnetic cores. National Aeronautics and Space Administration, 1995.

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26

Symposium A1 on High Temperature Superconductor Thin Films (1991 Strasbourg, France). High Tc superconductor thin films: Proceedings of Symposium A1 on High Temperature Superconductor Thin Films of the International Conference on Advanced Materials--ICAM 91, Strasbourg, France, 27-31 May, 1991. North Holland, 1992.

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27

Roth, Don J. Subtle porosity variation in the YBaCuO7-x high-temperature superconductor revealed by ultrasonic imaging. National Aeronautics and Space Administration, 1990.

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28

Symposium, F. on High Temperature Superconductor Thin Films: Growth Mechanisms-Interfaces-Multilayers (1996 Strasbourg France). High temperature superconductor thin films--growth mechanisms-interfaces-multilayers: Proceedings of Symposium F on High Temperature Superconductor Thin Films--Growth Mechanisms-Interfaces-Multilayers of the 1996 E-MRS Spring Conference, Strasbourg, France, June 4-7, 1996. Elsevier, 1997.

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29

United States. Dept. of Commerce. Office of Industrial Resource Administration. Strategic Analysis Division. Critical technology assessment of the U.S. superconductivity industry. U.S. Dept. of Commerce, Bureau of Export Administration, Office of Industries and Economic Security, Strategic Analysis Division, 1994.

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30

McGordon, Andrew. The current-voltage and noise properties of high temperature superconductor SNS and grain boundary junctions. University of Birmingham, 1999.

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31

High-Temperature Superconductor Materials, Devices and Applications Symposium (2004 Indianapolis, Ind.). High-temperature superconductor materials, devices, and applications: Proceedings of the 106th Annual Meeting of the American Ceramic Society, Indianapolis, Indiana, USA (2004). Edited by Paranthaman M. P and American Ceramic Society Meeting. American Ceramic Society, 2005.

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32

Zhang, Wentao. Photoemission Spectroscopy on High Temperature Superconductor: A Study of Bi2Sr2CaCu2O8 by Laser-Based Angle-Resolved Photoemission. Springer Berlin Heidelberg, 2013.

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33

Center, Lockheed Martin/Advanced Technology, and United States. National Aeronautics and Space Administration., eds. Low cost cryocoolers for high temperature superconductor communication filters: Final report : NASA AITP cooperative agreement NCC5-117. Lockheed Martin, 1998.

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34

United States. National Aeronautics and Space Administration., ed. Characterization of devices, circuits, and high-temperature superconductor transmission lines by electro-optic testing: Final technical report. University of Michigan, Ultrafast Science Laboratory, 1991.

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35

Center, Lockheed Martin/Advanced Technology, and United States. National Aeronautics and Space Administration., eds. Low cost cryocoolers for high temperature superconductor communication filters: Final report : NASA AITP cooperative agreement NCC5-117. Lockheed Martin, 1998.

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36

Conference on Critical Issues in the Development of High Temperature Structural Materials (1993 Kailua Kona, Hawaii). Critical issues in the development of high temperature structural materials: Proceedings from the Conference on Critical Issues in the Development of High Temperature Structural Materials, held in Kona, Hawaii, March 7-14, 1993. Minerals, Metals & Materials Society, 1993.

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37

M, O'Farrell J., and George C. Marshall Space Flight Center., eds. High frequency flow/structural interaction in dense subsonic fluids. National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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38

M, O'Farrell J., and United States. National Aeronautics and Space Administration., eds. High frequency flow/structural interaction in dense subsonic fluids. Rockwell Aerospace, Space Systems Division, Huntsville Operations, 1994.

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39

Physical characteristics and critical temperature of high temperature superconductors. Nova Science Publishers, 1991.

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40

Szymezak, Henryk. Critical Current Limitations in High Temperature Superconductors. World Scientific Publishing Co Pte Ltd, 1992.

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41

A study of enhancing critical current densities (JC) and critical temperature (TC) of high-temperature superconductors: Center Director's discretionary fund final report (project 90-N26). National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1992.

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42

Physical Characteristics and Critical Temperature of High Temperature Superconductors (Horizons in World Physics). Nova Science Publishers, 1991.

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43

Putzke, Carsten Matthias. Fermi Surface and Quantum Critical Phenomena of High-Temperature Superconductors. Springer, 2017.

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44

Putzke, Carsten Matthias. Fermi Surface and Quantum Critical Phenomena of High-Temperature Superconductors. Springer, 2016.

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45

Putzke, Carsten Matthias. Fermi Surface and Quantum Critical Phenomena of High-Temperature Superconductors. Springer, 2018.

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46

(Editor), H. Szymczak, ed. Proceedings of the International Workshop on Critical Current Limitations in High Temperature Superconductors: Zaborow Near Warsaw, Poland, 10-13 Se (Progress in High Temperature Superconductivity). World Scientific Pub Co Inc, 1992.

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47

Critical Current, Flux Pinning and Optical Studies of High Temperature Superconductors. Nova Science Publishers, 1997.

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48

Hiroshi, Maeda, Teruo Matsushita, Topical International Cryogenic Materials Conference, Koichi Ditazawa, and Kyoji Tachikawa. Critical State in Superconductors: Proceedings of 1994 Topical International Cryogenic Materials Conference : Tokai University Pacific Center, Honol. World Scientific Pub Co Inc, 1995.

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49

Zhang, H. Mesoscopic Structures and Their Effects on High-Tc Superconductivity. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.12.

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This article presents the results of model calculations carried out to determine the mesoscopic structural features of high-temperature superconducting (HTS) crystal structures, and especially their characteristic high critical temperature (Tc) and anisotropy. The crystal structure of high-temperature superconductors (HTSc) is unique in having some mesoscopic features. For example, the structures of a majority of cuprite superconductors are comprised of two structural blocks, perovskite and rock salt, stacked along the c-direction. This article calculates the interaction between the perovskite
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50

Critical Currents and Superconductivity: Ferromagnetism Coexistence in High-Tc Oxides. Taylor & Francis Group, 2016.

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