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1

H, Sowa, ed. Cubic structure types described in their space groups with the aid of frameworks. Karlsruhe, [West Germany]: Fachinformationszentrum Energie, Physik, Mathematik, 1985.

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2

Mitrjushkin, V., and G. Schierholz, eds. Lattice Fermions and Structure of the Vacuum. Dordrecht: Springer Netherlands, 2000. http://dx.doi.org/10.1007/978-94-011-4124-6.

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3

Mitrjushkin, V. Lattice Fermions and Structure of the Vacuum. Dordrecht: Springer Netherlands, 2000.

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4

V, Mitrjushkin, Schierholz G, and NATO Advanced Research Workshop on Lattice Fermions and Structure of the Vacuum (1999 : Dubna, Chekhovskiĭ raĭon, Russia), eds. Lattice fermions and structure of the vacuum. Dordrecht: Kluwer Academic Publishers, 2000.

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5

V, Mitrjushkin, Schierholz G, and NATO Advanced Research Workshop on Lattice Fermions and Structure of the Vacuum (1999 : Dubna, Chekhovskiĭ raĭon, Russia), eds. Lattice fermions and structure of the vacuum. Dordrecht: Kluwer Academic Publishers, 2000.

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6

Stokes, Finn M. Structure of Nucleon Excited States from Lattice QCD. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-25722-4.

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7

Akademii͡a nauk SSSR. I͡Akutskiĭ nauchnyĭ t͡sentr. Otdel prikladnoĭ matematiki i vychislitelʹnoĭ tekhniki, ed. Matematicheskie metody sinteza mnogosloĭnykh struktur pri vozdeĭstvii voln. I͡Akutsk: I͡Akutskiĭ nauchnyĭ t͡sentr SO AN SSSR, 1990.

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8

Nhani, José L. Marcolino. La structure des sous-espaces de treillis. Warszawa: Polska Akademia Nauk, Instytut Matematyczny, 2001.

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9

Cook, Norman D. Models of the Atomic Nucleus: Unification through a lattice of nucleons. 2nd ed. Berlin: Springer Verlag, 2010.

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10

Educational Resources Information Center (U.S.), ed. Quantifying the characteristics of knowledge structure representations: A lattice-theoretic framework. Los Angeles, CA: Center for the Study of Evaluation, National Center for Research on Evaluation, Standards, and Student Testing, Graduate School of Education & Information Studies, University of California, Los Angeles, 1998.

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11

United States-Japan Seminar on Electronic Structure and Lattice Defects in Alloys (1987 Honolulu). Electronic structure and lattice defects in alloys: Proceedings of the United States-Japan Seminar on Electronic Structure and Lattice Defects in Alloys held at the East-West Center, Honolulu, 4-8 May 1987. Aerdermannsdorf, Switzerland: Trans Tech, 1989.

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12

Max, Born. Problems of atomic dynamics. Mineola, N.Y: Dover Publications, 2004.

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13

1936-, Ferrante John, and Lewis Research Center, eds. Equivalent crystal theory of alloys. Washington, D.C: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1991.

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14

Shi, Chenyang. Local structure and lattice dynamics study of low dimensional materials using atomic pair distribution function and high energy resolution inelastic x-ray scattering. [New York, N.Y.?]: [publisher not identified], 2015.

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15

Zhu, K. Nonlinear dynamic analysis of lattice structures. Brisbane: Department of Civil Engineering, University of Queensland, 1992.

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16

Zhu, K. Nonlinear dynamic analysis of lattice structures. Brisbane: Universityof Queensland, Dept. of Civil Engineering, 1990.

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17

Leung, Henry Hon Hung. Trellis structure and decoding of lattices. Ottawa: National Library of Canada, 1994.

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18

Cioranescu, D. Homogenization of reticulated structures. New York: Springer, 1999.

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19

West, Harry H. Analysis of structures: An integration of classical and modern methods. 2nd ed. New York: Wiley, 1989.

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20

Müller-Hoissen, Folkert, Jean Marcel Pallo, and Jim Stasheff, eds. Associahedra, Tamari Lattices and Related Structures. Basel: Springer Basel, 2012. http://dx.doi.org/10.1007/978-3-0348-0405-9.

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21

American Society of Civil Engineers., ed. Design of latticed steel transmission structures. Reston, Va: American Society of Civil Engineers, 2000.

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22

American Society of Civil Engineers. Design of latticed steel transmission structures. Reston, Virginia: American Society of Civil Engineers, 2015.

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23

Fuentes, Benjamin J. Optical lattices: Structures, atoms, and solitons. Hauppauge, N.Y: Nova Science Publishers, 2012.

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24

Brohn, David. Understanding structural analysis. 2nd ed. Oxford: BSP Professional, 1990.

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25

United States. National Aeronautics and Space Administration., ed. Lattice truss structural response using energy methods. [Washington, D.C: National Aeronautics and Space Administration, 1996.

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26

United States. National Aeronautics and Space Administration., ed. Lattice truss structural response using energy methods. [Washington, D.C: National Aeronautics and Space Administration, 1996.

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27

Beckh, Matthias. Hyperbolic structures. Chichester, West Sussex, United Kingdom: John Wiley & Sons Inc., 2014.

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28

Noor, Ahmed Khairy. Continuum modeling of large lattice structures: Status and projections. Hampton, Va: Langley Research Center, 1988.

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29

M, Mikulas Martin, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., eds. Continuum modeling of large lattice structures: Status and projections. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Division, 1988.

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30

Romulus, Cristescu, ed. Structuri de ordine în analiza funcțională. București: Editura Academiei Republicii Socialiste România, 1989.

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31

Siegel, R. W., and F. E. Fujita. Electronic Structure and Lattice Defects in Alloys. Trans Tech Publications, Limited, 1989.

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32

Siegel, R. W., and F. E. Fujita. Electronic Structure and Lattice Defects in Alloys. Trans Tech Publications Ltd, 1989. http://dx.doi.org/10.4028/b-3f0rtg.

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33

Shoji, Satoru, Remo Proietti Zaccaria, and Satoshi Kawata. Holographic laser processing for three-dimensional photonic lattices. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.9.

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Abstract:
This article describes a holographic laser-processing method for independently controlling the lattice symmetry and lattice constant in three-dimensional photonic lattices. With this approach, optical periodicity is created in lower dimensions and three-dimensional periodicity is obtained by a combination of several lower-dimensional periodic structures. The proposed holographic laser-processing method is compared with the standard four-beam technique. Examples of experimental demonstration achieved in photosensitive polymers are given. The article also introduces a multiphoton direct-writing technique for creating defect structures in lattices towards production of defect cavity-functionalized photonic crystal devices. It shows that all Bravais lattices can be produced by choosing proper incident vectors of laser beams. The lattice constant of the structure can be changed without distorting its lattice symmetry and lattice elements.
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34

Stokes, Finn M. Structure of Nucleon Excited States from Lattice QCD. Springer International Publishing AG, 2019.

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35

Stokes, Finn M. Structure of Nucleon Excited States from Lattice QCD. Springer International Publishing AG, 2020.

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36

Suzuki, Michio. Structure of a Group and the Structure of its Lattice of Subgroups. Springer, 2012.

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37

Suzuki, Michio. Structure of a Group and the Structure of Its Lattice of Subgroups. Springer London, Limited, 2012.

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38

Lecture Notes on Algebraic Structure of Lattice-Ordered Rings. World Scientific Publishing Co Pte Ltd, 2014.

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39

Lecture Notes on Algebraic Structure of Lattice-Ordered Rings. World Scientific Publishing Co Pte Ltd, 2014.

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40

Lecture Notes on Algebraic Structure of Lattice-Ordered Rings. World Scientific Publishing Co Pte Ltd, 2014.

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41

Lecture notes on algebraic structure of lattice-ordered rings. New Jersey: World Scientific, 2014.

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42

Siegel, R. Electronic Structure and Lattice Defects in Alloys (Materials Science Forum). Trans Tech Pubn, 1987.

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43

(Editor), Valya Mitrjushkin, and Gerrit Schierholz (Editor), eds. Lattice Fermions and Structure of the Vacuum (NATO Science Series C: (closed)). Springer, 2000.

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44

Sexton, James Christopher. The phase structure of an SU(2) lattice gauge theory with fundamental Higgs fields. 1985.

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45

Zhizhin, G. N., and E. Mukhtarov. Vibrational Spectra and Structure: Optical Spectra and Lattice Dynamics of Molecular Crystals. Elsevier Science Pub Co, 1995.

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46

Sankari, Hassan M. Application of the NMR spin-lattice relaxation method to the structure of pigment systems. 1994.

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47

(Editor), Hiroyuki Oyanagi, and Antonio Bianconi (Editor), eds. Physics in Local Lattice Distortions: Fundamentals and Novel Concepts, LLD2K, Ibaraki, Japan, 23-26 July 2000 (AIP Conference Proceedings). American Institute of Physics, 2001.

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48

The statistical mechanics of quantum lattice systems: A path integral approach. Zurich: European Mathematical Society, 2009.

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49

Koleske, Daniel David. Studies of surface vibrations and structure using molecular dynamics simulations, lattice dynamics calculations, and helium atom scattering. 1992.

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50

(Editor), Valya Mitrjushkin, and Gerrit Schierholz (Editor), eds. Lattice Fermions and Structure of the Vacuum (Nato Science Series: C Mathematical and Physical Sciences Volume 553). Springer, 2000.

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