Books on the topic 'Polymeric layer'

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1

Wünsche, P., ed. Polymeric Layers. Darmstadt: Steinkopff, 1991. http://dx.doi.org/10.1007/bfb0114802.

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2

Polymer characterization: Rheology, laser interferometry, electrooptics. Heidelberg: Springer, 2010.

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3

Lloyd, Paul Maxwell. Matrix-assisted laser desorption/ionisation time-of-flight mass spectrometry of synthetic polymers. [s.l.]: typescript, 1998.

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4

Scudder, Lawrence Philip. Characterisation and testing of carbon fibre reinforced polymer composites using laser generated ultrasound. [s.l.]: typescript, 1994.

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5

Kopecký, Dušan. Deposition of polypyrrole thin films by advanced method: Matrix assisted pulsed laser evaporation. Hauppauge, N.Y: Nova Science Publishers, 2011.

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6

Vinogradov, B. A. Deĭstvie lazernogo izluchenii︠a︡ na polimernye materialy: Nauchnye osnovy i prikladnye zadachi v 2-kh knigakh. Sankt-Peterburg: "Nauka", 2006.

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7

Wunsche, P. Polymeric Layers. Edited by P. Wunsche. Springer, 1991.

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8

W]nsche, P. Polymeric Layers. Springer, 1996.

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9

Dusˇek, Karel, and Jean-François Joanny. Polymer Characterization: Rheology, Laser Interferometry, Electrooptics. Springer, 2012.

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10

Dusˇek, Karel, and Jean-François Joanny. Polymer Characterization: Rheology, Laser Interferometry, Electrooptics. Springer, 2010.

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11

Gureeva, Marina, Viktor Ovchinnikov, and Vladimir Ryazantsev. Welded joints with polymer layers and coatings. Infra-M Academic Publishing House, 2017. http://dx.doi.org/10.12737/21176.

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12

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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13

Solomon, Musikant, Society of Photo-optical Instrumentation Engineers., and New Mexico State University. Applied Optics Laboratory., eds. Advances in nonlinear polymers and inorganic crystals, liquid crystals, and laser media: 20-21 August 1987, San Diego, California. Bellingham, Wash., USA: The Society, 1988.

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14

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

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15

V, Vardeny Z., ed. Ultrafast dynamics and laser action of organic semiconductors. Boca Raton: Taylor & Francis, 2009.

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16

P, Mironov B., Bogdanov P. A, and Institut teplofiziki (Akademii͡a︡ nauk SSSR), eds. Techenii͡a︡ zhidkosti so svobodnymi poverkhnosti͡a︡mi i polimernymi dobavkami: Sbornik nauchnykh trudov. Novosibirsk: Akademii͡a︡ nauk SSSR, Sibirskoe otd-nie, In-t teplofiziki, 1986.

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17

Liang, Li, ed. MALDI mass spectrometry for synthetic polymers analysis. Hoboken: Wiley, 2010.

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18

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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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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19

Vardeny, Zeev Valy. Ultrafast Dynamics and Laser Action of Organic Semiconductors. Taylor & Francis Group, 2009.

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20

Ultrafast Dynamics and Laser Action of Organic Semiconductors. CRC, 2008.

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21

Belford, Michael William. The development of porous polymeric surfaces for screening acylcarnitines by laser desorption ionization mass spectrometry. 2003.

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22

Adams, W. Wade, and Ronald K. Eby. The Materials Science and Engineering of Rigid-Rod Polymers: Symposium Held November 28-December 2, 1988, Boston, Massachusetts, U.S.A. (Materials Research Society Symposium Proceedings). Materials Research Society, 1990.

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23

Wade, Adams W., Eby Ronald K. 1929-, McLemore Donald E, and Materials Research Society, eds. The Materials science and engineering of rigid-rod polymers: Symposium held November 28-December 2, 1988, Boston, Massachusetts, U.S.A. Pittsburgh, Pa: Materials Research Society, 1989.

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24

1921-, Atwater H. A., Houle Frances A, and Lowndes Douglas H, eds. Surface chemistry and beam-solid interactions: Symposium held November 26-29, 1990, Boston, Massachusetts, U.S.A. Pittsburgh, Pa: Materials Research Society, 1991.

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25

Musikant, Solomon. Advances in Nonlinear Polymers and Inorganic Crystals, Liquid Crystals and Laser Media. SPIE-International Society for Optical Engine, 1988.

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26

Corbett, Juliet. X radiographic studies of the laser driven compression of spherical polymer microshells. 1987.

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27

Vasileiou, Georgia. Characterisation of thickness in air and swelling in water of biocompatible polymer layers using ellipsometry. 1997.

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28

J, De Young R., Elsayid-Ele Hani, and Langley Research Center, eds. Compact ozone differential absorption lidar (DIAL) transmitter using soild-state dye polymers. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 2001.

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29

Nivaggioli, Thierry. In situ studies of thin polymer film dissolution by simultaneous laser interferometry and fluorescence quenching measurements. 1993.

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30

1937-, Wise Donald L., ed. International biosystems. Boca Raton, Fla: CRC Press, 1989.

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31

Narlikar, A. V., and Y. Y. Fu, eds. Oxford Handbook of Nanoscience and Technology. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.001.0001.

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This Handbook presents important developments in the field of nanoscience and technology, focusing on the advances made with a host of nanomaterials including DNA and protein-based nanostructures. Topics include: optical properties of carbon nanotubes and nanographene; defects and disorder in carbon nanotubes; roles of shape and space in electronic properties of carbon nanomaterials; size-dependent phase transitions and phase reversal at the nanoscale; scanning transmission electron microscopy of nanostructures; the use of microspectroscopy to discriminate nanomolecular cellular alterations in biomedical research; holographic laser processing for three-dimensional photonic lattices; and nanoanalysis of materials using near-field Raman spectroscopy. The volume also explores new phenomena in the nanospace of single-wall carbon nanotubes; ZnO wide-bandgap semiconductor nanostructures; selective self-assembly of semi-metal straight and branched nanorods on inert substrates; nanostructured crystals and nanocrystalline zeolites; unusual properties of nanoscale ferroelectrics; structural, electronic, magnetic, and transport properties of carbon-fullerene-based polymers; fabrication and characterization of magnetic nanowires; and properties and potential of protein-DNA conjugates for analytic applications.
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32

1935-, Wightman James P., and Langley Research Center. Materials Division., eds. Fracture surface analysis in composite and titanium bonding: Semi-annual report. Blacksburg, VA: Chemistry Dept., Virginia Polytechnic Institute & State University, 1985.

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33

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, 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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34

Center, Lewis Research, ed. Thermal and mechanical durability of graphite-fiber-reinforced PMR-15 composites. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1998.

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35

United States. National Aeronautics and Space Administration., ed. Thermal and mechanical durability of graphite-fiber-reinforced PMR-15 composites. [Washington, D.C: National Aeronautics and Space Administration, 1997.

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36

United States. National Aeronautics and Space Administration., ed. Thermal and mechanical durability of graphite-fiber-reinforced PMR-15 composites. [Washington, D.C: National Aeronautics and Space Administration, 1997.

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37

Center, Lewis Research, ed. Thermal and mechanical durability of graphite-fiber-reinforced PMR-15 composites. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1998.

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38

Problemnye regiony resursnogo tipa: Azi︠a︡tskai︠a︡ chastʹ Rossiĭ. Novosibirsk: SO RAN, 2005.

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39

V, Bazarov B., ed. Problemnye regiony resursnogo tipa: Aziatskai︠a︡ chastʹ Rossii. Novosibirsk: Izd-vo Sibirskogo otd-nii︠a︡ Rossiĭskoĭ akademii nauk, 2005.

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