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1

Wyn, Brown, ed. Dynamic light scattering: The method and some applications. Clarendon Press, 1993.

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2

Thomas, Wriedt, and Eremin Yuri, eds. Light scattering by systems of particles: Null-field method with discrete sources : theory and programs. Springer, 2006.

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3

1948-, Richards R. W., ed. Scattering methods in polymer science. Ellis Horwood, 1995.

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4

Scarlett, Brian, ed. Particle Characterization: Light Scattering Methods. Kluwer Academic Publishers, 2002. http://dx.doi.org/10.1007/0-306-47124-8.

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5

Xu, Renliang. Particle characterization : light scattering methods. Kluwer Academic, 2000.

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6

Xu, Renliang. Particle characterization : light scattering methods. Kluwer Academic, 2000.

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7

Xu, Renliang. Particle characterization: Light scattering methods. Kluwer Academic, 2002.

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8

C, Hill S., ed. Light scattering by particles: Computational methods. World Scientific, 1990.

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9

Tuchin, V. V. Tissue optics: Light scattering methods and instruments for medical diagnosis. SPIE Press, 2015.

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10

Europhysics Conference on Macromolecular Physics (27th 1991 Hērakleion, Greece). Applications of scattering methods to the dynamics of polymer systems: 27th Europhysics Conference on Macromolecular Physics, Heraklion, Crete, Greece, September 23-27, 1991. European Physical Society, 1991.

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11

Tuchin, V. Tissue optics: Light scattering methods and instruments for medical diagnosis. SPIE Optical Engineering Press, 2000.

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12

P, Lindner, and Zemb Th, eds. Neutrons, X-rays, and light: Scattering methods applied to soft condensed matter. Elsevier, 2002.

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13

Ikonen, Kirsi. Metal surface and subsurface inspection using nondestructive optical methods. Lappeenranta University of Technology, 2002.

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14

Makuashev, M. K. Statisticheskai͡a︡ teorii͡a︡ molekuli͡a︡rnogo rassei͡a︡nii͡a︡ sveta v atmosfere. Moskovskoe otd-nie Gidrometeoizdata, 1989.

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15

Wax, Adam. Biomedical applications of light scattering II: 19-21 January 2008, San Jose, California, USA. Edited by SPIE (Society). SPIE, 2008.

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16

Wax, Adam, and Vadim Backman. Biomedical applications of light scattering IV: 23-25 January 2010, San Francisco, California, United States. SPIE, 2010.

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17

Wax, Adam, and Vadim Backman. Biomedical applications of light scattering VII: 2-4 February 2013, San Francisco, California, United States. Edited by SPIE (Society). SPIE, 2013.

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18

Wax, Adam. Biomedical applications of light scattering V: 22-24 January 2011, San Francisco, California, United States. Edited by SPIE (Society). SPIE, 2011.

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19

Wax, Adam. Biomedical applications of light scattering III: 24-26 January 2009, San Jose, California, United States. Edited by SPIE (Society). SPIE, 2009.

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20

Furst, Eric M., and Todd M. Squires. Light scattering microrheology. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199655205.003.0005.

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The fundamentals and best practices of passive microrheology using dynamic light scattering and diffusing wave spectroscopy are discussed. The principles of light scattering are introduced and applied in both the single and multiple scattering regimes, including derivations of the light and field autocorrelation functions. Applications to high-frequency microrheology and polymer dynamics are presented, including inertial corrections. Methods to treat gels and other non-ergodic samples, including multi-speckle and optical mixing designs are discussed. Dynamic light scattering (DLS) is a well es
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21

Doicu, Adrian, Yuri A. Eremin, and Thomas Wriedt. Light Scattering by Systems of Particles : Null-Field Method with Discrete Sources: Theory and Programs. Springer, 2014.

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22

Doicu, Adrian, Yuri A. Eremin, and Thomas Wriedt. Light Scattering by Systems of Particles : Null-Field Method with Discrete Sources: Theory and Programs. Springer London, Limited, 2006.

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23

Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2020. http://dx.doi.org/10.1016/c2018-0-02999-0.

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24

Yang, Ping, Michael Kahnert, Bingqiang Sun, Lei Bi, and George Kattawar. Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2019.

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25

Yang, Ping, Michael Kahnert, Bingqiang Sun, Lei Bi, and George Kattawar. Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2019.

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26

Brown, Wyn. Dynamic Light Scattering: The Method and Some Applications (Monographs on the Physics and Chemistry of Materials, 49). Oxford University Press, USA, 1993.

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27

Barber, Peter W. Light Scattering by Particles: Computational Methods. World Scientific Publishing Co Pte Ltd, 1990.

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28

Barber, Peter W. Light Scattering by Particles: Computational Methods. World Scientific Publishing Co Pte Ltd, 1990.

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29

Wax, Adam, and Vadim Backman. Biomedical Applications of Light Scattering VIII. SPIE, 2014.

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30

(Editor), P. Lindner, and Th Zemb (Editor), eds. Neutron, X-rays and Light. Scattering Methods Applied to Soft Condensed Matter (North-Holland Delta Series). North Holland, 2002.

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31

Domke, Helmut, J. W. Hovenier, and Cornelis V. M. Van Der Mee. Transfer of Polarized Light in Planetary Atmospheres: Basic Concepts And Practical Methods. Springer, 2014.

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32

Xu, Renliang. Particle Characterization: Light Scattering Methods (Particle Technology Series). Springer, 2001.

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33

Backman, Vadim, and Adam P. Wax. Biomedical Applications of Light Scattering VI. SPIE, 2012.

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34

Tuchin, Valery V. Tissue Optics: Light Scattering Methods and Instruments for Medical Diagnosis. Society of Photo-Optical Instrumentation Engineers (SPIE), 2015. http://dx.doi.org/10.1117/3.1003040.

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35

Tissue optics: Light scattering methods and instruments for medical diagnosis. 2nd ed. Society of Photo-optical Instrumentation Engineers, 2007.

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36

Dynamic Light Scattering: Physical Methods in Chemistry and Nano Science. Independently Published, 2019.

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37

Xu, Renliang. Particle Characterization : Light Scattering Methods (Particle Technology Series) (Particle Technology Series). Springer, 2000.

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38

Neutron, X-Rays and Light. Scattering Methods Applied to Soft Condensed Matter. Elsevier Science & Technology, 1988.

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39

Oberdisse, Julian. Neutrons, X-Rays, and Light: Scattering Methods Applied to Soft Condensed Matter. Elsevier, 2024.

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40

Lindner, P., and Th Zemb. Neutron, X-Rays and Light. Scattering Methods Applied to Soft Condensed Matter. Elsevier Science & Technology Books, 2002.

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41

Tissue Optics: Light Scattering Methods and Instruments for Medical Diagnosis, 2nd Ed. SPIE, 2007.

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42

Oberdisse, Julian. Neutrons, X-Rays, and Light: Scattering Methods Applied to Soft Condensed Matter. Elsevier, 2024.

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43

Furst, Eric M., and Todd M. Squires. Interferometric tracking. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199655205.003.0006.

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The purpose of this chapter is to present a survey of passive microrheology techniques that are important complements to more widely used particle tracking and light scattering methods. Such methods include back focal plane interferometry and extensions of particle tracking to measure the rotation of colloidal particles. Methods of passive microrheology using back focal plane interferometry are presented, including the experimental design and detector sensitivity and limits in frequency bandwidth and spatial resolution. The Generalized Stokes Einstein relation is derived from linear response t
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44

Tuchin, Valery. Tissue Optics: Light Scattering Methods and Instruments for Medical Diagnosis, Second Edition (SPIE Press Monograph Vol. PM166) (Press Monograph). 2nd ed. SPIE Publications, 2007.

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45

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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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, an
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46

Optical Polarization in Biomedical Applications (Biological and Medical Physics, Biomedical Engineering). Springer, 2006.

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