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1

International Conference on Temperature-Fatigue Interaction (9th 2001 Paris, France). Temperature-fatigue interaction. Edited by Rémy L and Petit J. Elsevier, 2002.

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2

Bauerhenne, Bernd. Materials Interaction with Femtosecond Lasers. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-85135-4.

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3

Arnold, Graham S. Kinetics of oxygen interaction with materials. American Institute of Aeronautics and Astronautics, 1985.

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4

service), SpringerLink (Online, ed. Metallic Nanocrystallites and their Interaction with Microbial Systems. Springer Netherlands, 2012.

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5

Gerhard, Kreysa, Schütze Michael, and Dechema, eds. Corrosion handbook: Corrosive agents and their interaction with materials. 2nd ed. Wiley-VCH, 2004.

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6

Esa, Eranti. Dynamic ice structure interaction: Theory and applications. VTT, Technical Research Centre of Finland, 1992.

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7

Nelson, D. A. Interaction of finite-amplitude sound with air-filled porous materials. Dept. of Mechancial Engineering, University of Texas, 1985.

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8

Ciolfi, Veronica Jean Dinah. Assessment of the early interaction of chondrocytes with different materials. National Library of Canada, 2002.

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9

Nelson, D. A. Interaction of finite-amplitude sound with air-filled porous materials. Dept. of Mechancial Engineering, University of Texas, 1985.

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10

Jürgen, Tomas, and SpringerLink (Online service), eds. Micro-Macro-interaction: In Structured media and Particle Systems. Springer Berlin Heidelberg, 2008.

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11

Bashter, Ibrahim Ismail Ali. The interaction of fast neutrons with shielding and fusion blanket materials. University of Aston, Department of Mathematics and Physics, 1985.

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12

Cross, Jon B. Atomic oxygen interaction with spacecraft materials: relationship between orbital and ground-based testing for materials certification. Los Alamos National Laboratory, 1991.

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13

Kaufman, Bradford A. Photovoltaic plasma interaction test II. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program Center, 1996.

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14

Kaufman, Bradford A. Photovoltaic plasma interaction test II. National Aeronautics and Space Administration, 1996.

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15

Shuzo, Uehara, and Emfietzoglou Dimitris, eds. Interaction of radiation with matter. Taylor & Francis, 2012.

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16

M, Bonch-Bruevich A., Konov V. I, Libenson M. N, and Society of Photo-optical Instrumentation Engineers. Soviet Chapter., eds. Optical radiation interaction with matter: All-Union Conference on Interaction of Optical Radiation with Materials : 6-12 September 1990, Leningrad, USSR. SPIE, 1991.

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17

Chipped stone raw materials and the study of interaction on Black Mesa, Arizona. Southern Illinois University at Carbondale, Center for Archaeological Investigations, 1985.

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18

Hoven, H. Materials for high heat flux components of the first wall in fusion reactors. Kernforschungsanlage Julich, Institut fur Reaktorwerkstoffe, 1985.

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19

International Symposium on the Fracture Mechanics of Ceramics (7th 1999 Moscow, Russia). Crack-microstructure interaction, R-curve behavior, environmental effects in fracture, and standardization. Kluwer Academic/Plenum, 2002.

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20

McGlynn, Gaffney Edward, ed. Religious freedom: History, cases, and other materials on the interaction of religion and government. 3rd ed. Foundation Press/Thomson/West, 2011.

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21

Capelleti, Rosanna. Rare earths as a probe of environment and electron-phonon interaction in optical materials. Nova Science Publishers, 2009.

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22

Participatory, Design Conference (8th 2004 Toronto Ont ). PDC 2004: Artful integration : interweaving media, materials, and practices : proceedings of the eighth Participatory Design Conference 2004, July 27-31, 2004, Toronto, Canada. Association for Computing Machinery, 2004.

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23

StephenA, Paipetis, Papanicolaou G. C. 1943-, and COMP '88, eds. Phase interaction in composite materials. Omega Scientific, 1992.

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24

Wiberg, Mikael. Materiality of Interaction: Notes on the Materials of Interaction Design. MIT Press, 2018.

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25

Wiberg, Mikael. Materiality of Interaction: Notes on the Materials of Interaction Design. MIT Press, 2018.

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26

Wiberg, Mikael. Materiality of Interaction: Notes on the Materials of Interaction Design. MIT Press, 2018.

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27

Chen, Andrea, and Randy Hsiao-Yu Lo. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2016.

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28

Chen, Andrea, and Randy Hsiao-Yu Lo. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2016.

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29

Chen, Andrea. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis, 2012.

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30

Dooley, Barry. Interaction of Iron Based Materials With. Electric Power Research Inst, 1993.

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31

Chen, Andrea, and Randy Hsiao-Yu Lo. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2017.

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32

Chen, Andrea, and Randy Hsiao-Yu Lo. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2016.

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33

Chen, Andrea, and Randy Hsiao-Yu Lo. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2016.

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34

Chen, Andrea. Semiconductor Packaging: Materials Interaction and Reliability. Taylor & Francis Group, 2013.

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35

The Materiality of Interaction: Notes on the Materials of Interaction Design. The MIT Press, 2018.

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36

Donn, Byrne. Materials for Language Teaching: Part 1: Interaction Package A (Materials for Language Teaching: Resource Materials). Macmillan Education, 1987.

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37

Andrzej, Kraszewski, ed. Microwave aquametry: Electromagnetic wave interaction with water-containing materials. IEEE Press, 1996.

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38

(Editor), Ubbo Gramberg, and Dieter Behrens (Editor), eds. Corrosive Agents & Their Interaction With Materials: Concordance of U.S. and German Designations for Materials. Wiley-VCH Verlag GmbH, 1999.

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39

Geotechnics of high water content materials. ASTM, 2000.

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40

Zhao, Yufeng, Yong-Hyun Kim, S. B. Zhang, and Michael J. Heben. Theory of hydrogen storage in nanoscale materials. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.20.

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This article reviews the theory of hydrogen storage in nanoscale materials. It first describes the concept of hydrogen sorbent and an optimal type of hydrogen-storage material (HSM), in which hydrogen-HSM interaction is much weaker than the internal interactions in the HSMs. It then considers the mechanism of hydrogen-material interaction in terms of bonding between hydrogen and other elements through orbital hybridization, focusing on physisorption, chemisorptions through weak covalent bonds, non-classical dihydrogenbinding, and electrostatic-enhanced binding of H2 in HSMs. It also examines t
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41

G, Kreysa, Eckermann R, and Behrens Dieter, eds. Dechema corrosion handbook: Corrosive agents and their interaction with materials. VCH Verlagsgesellschaft, Germany, 1993.

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42

DECHEMA corrosion handbook: Corrosive agents and their interaction with materials. VCH Verlagsgesellschaft, 1993.

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43

Dieter, Behrens, and DECHEMA, eds. DECHEMA corrosion handbook: Corrosive agents and their interaction with materials. VCH Verlagsgesellschaft (for) DECHEMA, 1991.

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44

Dieter, Behrens, and DECHEMA, eds. DECHEMA corrosion handbook: Corrosive agents and their interaction with materials. VCH Verlagsgesellschaft (for) DECHEMA, 1991.

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45

Behrens, Dieter. Dechema Corrosion Handbook Corrosive Agents and Their Interaction With Materials. Vch Pub, 1993.

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46

Behrens, Dieter. Dechema Corrosion Handbook: Corrosive Agents and Their Interaction With Materials. Vch Pub, 1991.

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47

Dieter, Behrens, Kreysa Gerhard, Eckermann R, and Dechema. Chemische Technik und Biotechnologie., eds. Dechema corrosion handbook: Corrosive agents and their interaction with materials. Dechema, 1987.

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48

Dechema. Dechema Corrosion Handbook: Corrosive Agents and Their Interaction With Materials. Vch Pub, 1991.

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49

DECHEMA Corrosion Handbook : Corrosive Agents and their Interaction with Materials. Elsevier Science, 2001.

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50

DECHEMA Corrosion Handbook : Corrosive Agents and their Interaction with Materials. Elsevier Science, 2002.

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