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1

Ke, Y. C. Polymer-layered silicate and silica nanocomposites. Boston, Mass: Elsevier, 2005.

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2

Howie, R. A. (Robert Andrew), Zussman J, and Geological Society of London, eds. Layered silicates excluding micas and clay minerals. 2nd ed. London: Geological Society, 2009.

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3

Jiang, Zhimei. Structural investigations of layered silicates by vibrational spectroscopy. Sudbury, Ont: Laurentian University, Chemistry and Biochemistry Department, 1997.

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4

Boyd, S. A., W. J. Farmer, W. F. Jaynes, G. Lagaly, D. A. Laird, and A. R. Mermut. Layer Charge Characteristics of 2:1 Silicate Clay Minerals. Edited by A. R. Mermut and R. E. Ferrell. PO Box 460130 Aurora, CO 80046-0130 USA: Clay Minerals Society, 1994. http://dx.doi.org/10.1346/cms-wls-6.

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5

I, Tarasevich I͡U. Stroenie i khimii͡a poverkhnosti sloistykh silikatov. Kiev: Nauk. dumka, 1988.

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6

Mortin, Lindsey Amanda. The significance of the silica-rich layer in the response of bone-derived cells to bioglass in vitro. Birmingham: University of Birmingham, 2000.

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7

Polymer-Layered Silicate and Silica Nanocomposites. Elsevier, 2005. http://dx.doi.org/10.1016/b978-0-444-51570-4.x5000-9.

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8

Okamoto, M. Polymer/layered Silicate Nanocomposites (Rapra Review Reports). Rapra Technology, 2003.

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9

Pandey, Jitendra K., Kummetha Raghunatha Reddy, Amar Kumar Mohanty, and Manjusri Misra. Handbook of Polymernanocomposites. Processing, Performance and Application : Volume A: Layered Silicates. Springer, 2016.

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10

Pandey, Jitendra K., Kummetha Raghunatha Reddy, Amar Kumar Mohanty, and Manjusri Misra. Handbook of Polymernanocomposites. Processing, Performance and Application : Volume A: Layered Silicates. Springer, 2014.

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11

Yirong, He, and NASA Glenn Research Center, eds. Development of refractory silicate-YSZ dual layer TBCs. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 1999.

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12

A, Boyd Stephen, Mermut A. R, and Clay Minerals Society, eds. Layer charge characteristics of 2:1 silicate clay minerals. Boulder, CO: Clay Minerals Society, 1994.

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13

Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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14

Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Geological Survey, 1993.

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15

Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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16

Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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17

Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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18

Geological Survey (U.S.), ed. Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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19

Geological Survey (U.S.), ed. Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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20

Geological Survey (U.S.), ed. Oxygen-isotope, X-ray-diffraction and scanning-electron-microscope examinations of authigenic-layer-silicate minerals from Mississippian and Pennsylvanian sandstones in the Michigan Basin. Lansing, Mich: U.S. Dept. of the Interior, U.S. Geological Survey, 1993.

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21

Lin, C. W., N. F. Chiu, and C. C. Chang. Modulation design of plasmonics for diagnostic and drug screening. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.18.

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This article discusses the modulation design of plasmonics for diagnosis and drug screening applications. It begins with an overview of the advances made in terms of theoretical insights, focusing on the origins of surface plasmon wave and manipulation, admittance loci design method, and surface plasmon grating coupled emission. It then considers how prism coupler, Ge-doped silica waveguide, nanograting and active plasmonics can trigger the excitation of surface plasmon resonance (SPR). It also examines the metallic effect of long-range surface plasmon resonance and conducting metal oxide as adhesive layer before describing three SPR waveguide biosensors that were developed for the realization of a hand-held SPR system. In particular, it presents a lateral-flow microfluidic channel based on a nitrocellulose membrane and integrated with a SPR waveguide biosensor to achieve dynamic detection. Finally, the article evaluates the biomolecular layer effect, with emphasis on kinetics analysis of antibody binding.
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22

Preparation and certification of SRM-2530, ellipsometric parameters [delta] and [psi] and derived thickness and refractive index of a silicon dioxide layer on silicon. Gaithersburg, MD: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1988.

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