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1

Prince, Edward. Mathematical techniques in crystallography andmaterial science. 2nd ed. Berlin: Springer-Verlag, 1994.

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2

Balibar, Françoise. The science of crystals. New York: McGraw-Hill, 1993.

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3

Prince, Edward. Mathematical techniques in crystallography and materials science. 3rd ed. Berlin: Springer, 2004.

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4

Prince, Edward. Mathematical techniques in crystallography and materials science. 2nd ed. Berlin: Springer-Verlag, 1994.

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5

Prince, Edward. Mathematical Techniques in Crystallography and Materials Science. Berlin, Heidelberg: Springer Berlin Heidelberg, 1994.

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6

Prince, Edward. Mathematical Techniques in Crystallography and Materials Science. Berlin, Heidelberg: Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-97576-9.

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7

Prince, Edward. Mathematical Techniques in Crystallography and Materials Science. Berlin, Heidelberg: Springer Berlin Heidelberg, 2004. http://dx.doi.org/10.1007/978-3-642-18711-7.

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8

B, McMahon, ed. International Tables for Crystallography Volume G: Definition and exchange of crystallographic data. Dordrecht: International Union of Crystallography, 2005.

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9

Gottstein, Günter. Physical Foundations of Materials Science. Berlin, Heidelberg: Springer Berlin Heidelberg, 2004.

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10

Hašek, J. X-Ray and Neutron Structure Analysis in Materials Science. Boston, MA: Springer US, 1989.

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11

Conference on Applied Crystallography (20th 2006 Wisła, Poland). Applied crystallography XX: Proceedings of the XX Conference on Applied Crystallography, 11-14 September 2006 - Wisła, Poland. Switzerland: Trans Tech Publications, 2007.

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12

Adler, David. Disordered Materials: Science and Technology. Boston, MA: Springer US, 1991.

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13

Henryk, Morawiec, and Stróż Danuta, eds. Applied crystallography: Proceedings of the XVIII conference, Wisla, Poland, 4-7 September 2000. River Edge, N.J: World Scientific, 2001.

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14

NATO Advanced Study Institute/Thirteenth Course of the International School of Crystallography on Crystal Growth in Science and Technology (1987 Erice, Italy). Crystal growth in science and technology. New York: Plenum Press, 1989.

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15

Beaumont, Steven P. Science and Engineering of One- and Zero-Dimensional Semiconductors. Boston, MA: Springer US, 1990.

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16

McConnell, Robert D. Science and Technology of Thin Film Superconductors. Boston, MA: Springer US, 1989.

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17

Authier, André. Early days of X-ray crystallography. Oxford: Oxford University Press, 2013.

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18

Kolb, Ute. Uniting Electron Crystallography and Powder Diffraction. Dordrecht: Springer Netherlands, 2012.

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19

Introduction to diffraction in materials, science, and engineering. New York: John Wiley, 2001.

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20

McConnell, Robert D. Science and Technology of Thin Film Superconductors 2. Boston, MA: Springer US, 1990.

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21

L, Thomas Edwin, ed. The structure of materials. New York: J. Wiley, 1999.

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22

International Symposium on Crystallography and Bioinformatics in Structural Biology (2001 Bangalore, India). International Symposium on Crystallography and Bioinformatics in Structural Biology at Indian Institute of Science (22-24) and National Centre for Biological Sciences (25), Bangalore 560012, India, 22-25 November 2001: Abstracts. Bangalore: The Institute and the Centre, 2001.

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23

author, McHenry Michael E., ed. Structure of materials: An introduction to crystallography, diffraction and symmetry. Cambridge: Cambridge University Press, 2012.

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24

Arend, H. Crystal Growth in Science and Technology. Boston, MA: Springer US, 1990.

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25

Meeting, Asian Crystallographic Association. AsCA'01: IVth Meeting of Asian Crystallographic Association at Indian Institute of Science, Bangalore, India, 18-21 November 2001 : abstracts. [Bangalore: Indian Institute of Science, 2001.

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26

Dyson, D. J. X-ray and electron diffraction studies in materials science. London: Maney for the Institute of Materials, Minerals, and Mining, 2004.

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27

Rousseau, Jean-Jacques. Cristallographie géométrique et radiocristallographie: Cours et exercices corrigés. 3rd ed. Paris: Dunod, 2007.

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28

Jean-Marie, Dubois, ed. Les Quasicristaux: Matie re a paradoxes. Les Ulis (France): EDP Sciences, 1998.

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29

P, Krishna, ed. Random, non-random, and periodic faulting in crystals. Yverdon, Switzerland: Gordon and Breach Science Publishers, 1994.

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30

Sebastian, M. T. Random, non-random, and periodic faulting incrystals. Yverdon: Gordon and Breach, 1994.

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31

International Symposium on Industrial Crystallization (14th 1999 Cambridge, England). 14th International Symposium on Industrial Crystallization. Rugby: IChemE, 1999.

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32

Symposium on Electron Crystallography (1992 University of Pittsburgh). Proceedings of the Symposium on Electron Crystallography at the University of Pittsburgh, Pittsburgh, PA, August 9-14, 1992. Edited by Dorset Douglas L. 1942-. Buffalo, N.Y: American Crystallographic Association, 1994.

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33

International Conference on Advanced Methods in X-Ray and Neutron Structure Analysis of Materials (1987 Karlovy Vary, Czechoslovakia). X-ray and neutron structure analysis in materials science. New York: Plenum Press, 1989.

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34

1949-, Koivula John I., and Meyer Henry O. A, eds. Photoatlas of Inclusions in Gemstones, Vol. 1. Zurich: ABC Edition, 1986.

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35

E, Deffeyes Stephen, ed. Nano: Illustrations of an invisible world. Cambridge, MA: MIT Press, 2009.

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36

Physikalische Grundlagen der Materialkunde. 3rd ed. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2007.

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37

Hahn, Theo. Symmetry of crystals: Introduction to International tables for crystallography, vol. A : lecture notes provided to the summer school at Gjuletchitsa, Bulgaria, June 1994. Sofia, Bulgaria: Heron Press, 1994.

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38

Vaĭnshteĭn, B. K. Structure of crystals. 3rd ed. Berlin: Springer, 2000.

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39

Schorr, Susan, and Claudia Weidenthaler, eds. Crystallography in Materials Science. De Gruyter, 2021. http://dx.doi.org/10.1515/9783110674910.

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40

L, Connelly Bryan, ed. Chemical crystallography. Hauppauge, N.Y: Nova Science Publishers, 2009.

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41

Modern crystallography. 3rd ed. Berlin: Springer, 2000.

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42

Carmelo, Giacovazzo, ed. Fundamentals of crystallography. Oxford: Oxford University Press, 2002.

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43

Giacovazzo, C., H. L. Monaco, G. Artioli, D. Viterbo, G. Ferraris, G. Gilli, G. Zanotti, and M. Catti. Fundamentals of Crystallography. 2nd ed. Oxford University Press, USA, 2002.

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44

Giacovazzo, C., H. L. Monaco, G. Artioli, D. Viterbo, G. Ferraris, G. Gilli, G. Zanotti, and M. Catti. Fundamentals of Crystallography. Oxford University Press, USA, 2002.

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45

Vainshtein, Boris K., Vladimir M. Fridkin, and Vladimir L. Indenbom. Modern Crystallography 2: Structure of Crystals (Modern Crystallography, Volume 2). 3rd ed. Springer, 2000.

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46

(Editor), H. Arend, and J. Hulliger (Editor), eds. Crystal Growth in Science and Technology (NATO Science Series: B:). Springer, 1990.

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47

Giacovazzo, Carmelo. Phasing in Crystallography. Oxford University Press, 2013. http://dx.doi.org/10.1093/oso/9780199686995.001.0001.

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Modern crystallographic methods originate from the synergy of two main research streams, the small-molecule and the macro-molecular streams. The first stream was able to definitively solve the phase problem for molecules up to 200 atoms in the asymmetric unit. The achievements obtained by the macromolecular stream are also impressive. A huge number of protein structures have been deposited in the Protein Data Bank. The solution of them is no longer reserved to an elite group of scientists, but may be attained in a large number of laboratories around the world, even by young scientists. New probabilistic approaches have been tailored to deal with larger structures, errors in the experimental data, and modest data resolution. Traditional phasing techniques like ab initio, molecular replacement, isomorphous replacement, and anomalous dispersion techniques have been revisited. The new approaches have been implemented in robust phasing programs, which have been organized in automatic pipelines usable even by non-experts. Protein structures, which 50 years ago could take months or even years to solve, can now be solved in a matter of hours, partly also due to technological advances in computer science. This book describes all modern crystallographic phasing methods, and introduces a new rational classification of them. A didactic approach is used, with the techniques described simply and logically in the main text, and further mathematical details confined to the Appendices for motivated readers. Numerous figures and applicative details illustrate the text.
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48

Adler, David, Brian B. Schwartz, Marvin Silver, and Stadford R. Ovshinsky. Disordered Materials: Science and Technology. Springer, 1992.

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49

Disordered Materials: Science and Technology. Springer, 2012.

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50

(Editor), J. R. Fryer, and D. Dorset (Editor), eds. Electron Crystallography of Organic Molecules (NATO Science Series C:). Springer, 1990.

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