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1

European Symposium on Polymer Spectroscopy (15th 2003 Crete, Greece). Polymer spectroscopy: 15th European Symposium on Polymer Spectroscopy : Crete, Greece, June 8-12, 2003. Edited by Gregoriou Vasilis G. Weinheim, Germany: WILEY-VCH, 2004.

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2

Wilhelm, Peter. Modern polymer spectroscopy: Selected contributions from the conference: "17th European Symposium on Polymer Spectroscopy (ESOPS 17)", Seggauberg, Austria, September 9-12, 2007. Weinheim: Wiley-VCH, 2008.

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3

Garton, Andrew. Infrared spectroscopy of polymer blends, composites and surfaces. Munich: Hanser Publishers, 1992.

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4

Infrared spectroscopy of polymer blends, composites and surfaces. Munich: C.Hanser, 1992.

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5

A, Winnik Mitchell, and North Atlantic Treaty Organization. Scientific Affairs Division., eds. Photophysical and photochemical tools in polymer science: Conformation, dynamics, morphology. Dordrecht: D. Reidel Pub. Co., 1986.

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6

Tonelli, Alan E. NMR spectroscopy and polymer microstructure: The conformational connection. New York, N.Y: VCH, 1989.

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7

Brandolini, Anita J. NMR spectra of polymers and polymer additives. New York: Marcel Dekker, 2000.

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8

European Symposium on Polymer Spectroscopy (16th 2005 Kerkrade, Netherlands). Polymer spectroscopy: Selected contributions from the conference in Rolduc Abbey Kerkrade (The Netherlands) May 29-June 1, 2005. Edited by Goossens J. G. P and Jansen J. A. J. Weinheim, Germany: WILEY-VCH, 2005.

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9

service), SpringerLink (Online, ed. Assessing the Functional Structure of Molecular Transporters by EPR Spectroscopy. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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10

Zeinolebadi, Ahmad. In-situ Small-Angle X-ray Scattering Investigation of Transient Nanostructure of Multi-phase Polymer Materials Under Mechanical Deformation. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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11

Irie, Masahiro. New Frontiers in Photochromism. Tokyo: Springer Japan, 2013.

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12

H, Fawcett A., ed. Polymer spectroscopy. Chichester, England: Wiley, 1996.

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13

Wilhelm, Peter. Modern Polymer Spectroscopy: 17th European Symposium on Polymer Spectroscopy. Wiley & Sons, Incorporated, John, 2009.

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14

1933-, Zerbi Giuseppe, ed. Modern polymer spectroscopy. Weinheim: Wiley-VCH, 1999.

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15

Noda, Isao, Heinz W. Siesler, Giuseppe Zerbi, Mitsuo Tasumi, and Samuel Krimm. Modern Polymer Spectroscopy. Wiley & Sons, Incorporated, John, 2008.

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16

Noda, Isao, Heinz W. Siesler, Giuseppe Zerbi, Mitsuo Tasumi, and Samuel Krimm. Modern Polymer Spectroscopy. Wiley & Sons, Limited, John, 2007.

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17

J. G. P. Goossens (Editor) and Jan A. J. Jansen (Editor), eds. Polymer Spectroscopy (Macromolecular Symposia). Wiley-VCH, 2006.

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18

Thomas, Sabu, Deepalekshmi Ponnamma, and Didier Rouxel. Spectroscopy of Polymer Nanocomposites. Elsevier Science & Technology Books, 2016.

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19

Thomas, Sabu, Deepalekshmi Ponnamma, and Didier Rouxel. Spectroscopy of Polymer Nanocomposites. Elsevier Science & Technology Books, 2016.

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20

Rånby, B. ESR Spectroscopy in Polymer Research. Springer, 2011.

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21

1947-, Fouassier Jean-Pierre, and Rabek J. F, eds. Lasers in polymer science and technology: Applications. Boca Raton, Fla: CRC Press, 1990.

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22

NMR Spectroscopy and Polymer Microstructure Methods in Stereochemical Analysis. Wiley-VCH Verlag GmbH, 1989.

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23

George C. Marshall Space Flight Center., ed. Electron spectroscopy for chemical analysis: Sample analysis : final report. Marshall Space Flight Center, AL: George C. Marshall Space Flight Center, 1989.

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24

Rabek, Jan F., and Jean-Pierre Fouassier. Lasers in Polymer Science and Technolgy: Applications, Volume IV. CRC, 1989.

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25

1924-, Bird R. Byron, ed. Statistical mechanics, deformation, ultrasonic spectroscopy. Berlin: Springer, 1996.

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26

Attenuated Total Reflectance Spectroscopy of Polymers: Theory and Practice (Polymer Surfaces and Interfaces Series). An American Chemical Society Publication, 1998.

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27

Ishida, H. Fourier Transform--Infrared Characterization of Polymers (Polymer Science and Technology, V. 36). Springer, 1987.

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28

Junk, Matthias J. N. Assessing the Functional Structure of Molecular Transporters by EPR Spectroscopy. Springer, 2014.

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29

Musial, Beata A. I. Effect of an anionic polymer on the separation of cationic molecules by capillary electrophoresis: II. Off-line and on-line photochemical reaction of aromatic nitro compounds with detection by molecular spectroscopy and mass spectrometry. 2002.

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30

N, Cheng H., English Alan D. 1947-, American Chemical Society. Division of Polymer Chemistry, and American Chemical Society Meeting, eds. NMR spectroscopy of polymers in solution and in the solid state. Washington, D.C: American Chemical Society, 2002.

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31

Cheng, H. N., and Alan D. English. NMR Spectroscopy of Polymers in Solution and in the Solid State (Acs Symposium Series). An American Chemical Society Publication, 2002.

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32

Zeinolebadi, Ahmad. In-situ Small-Angle X-ray Scattering Investigation of Transient Nanostructure of Multi-phase Polymer Materials Under Mechanical Deformation. Springer, 2016.

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33

Zeinolebadi, Ahmad. In-situ Small-Angle X-ray Scattering Investigation of Transient Nanostructure of Multi-phase Polymer Materials Under Mechanical Deformation. Springer, 2013.

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34

Irie, Masahiro, Yasushi Yokoyama, and Takahiro Seki. New Frontiers in Photochromism. Springer, 2015.

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35

Furst, Eric M., and Todd M. Squires. Microrheology. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199655205.001.0001.

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Abstract:
We present a comprehensive overview of microrheology, emphasizing the underlying theory, practical aspects of its implementation, and current applications to rheological studies in academic and industrial laboratories. Key methods and techniques are examined, including important considerations to be made with respect to the materials most amenable to microrheological characterization and pitfalls to avoid in measurements and analysis. The fundamental principles of all microrheology experiments are presented, including the nature of colloidal probes and their movement in fluids, soft solids, and viscoelastic materials. Microrheology is divided into two general areas, depending on whether the probe is driven into motion by thermal forces (passive), or by an external force (active). We present the theory and practice of passive microrheology, including an in-depth examination of the Generalized Stokes-Einstein Relation (GSER). We carefully treat the assumptions that must be made for these techniques to work, and what happens when the underlying assumptions are violated. Experimental methods covered in detail include particle tracking microrheology, tracer particle microrheology using dynamic light scattering and diffusing wave spectroscopy, and laser tracking microrheology. Second, we discuss the theory and practice of active microrheology, focusing specifically on the potential and limitations of extending microrheology to measurements of non-linear rheological properties, like yielding and shear-thinning. Practical aspects of magnetic and optical tweezer measurements are preseted. Finally, we highlight important applications of microrheology, including measurements of gelation, degradation, high-throughput rheology, protein solution viscosities, and polymer dynamics.
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