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1

Plasmonics and plasmonic metamaterials: Analysis and applications. Singapore: World Scientific Pub., 2012.

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2

Purazumon nano zairyō no kaihatsu to ōyō: Developments and applications of plasmonic nanomaterials. Tōkyō: Shīemushī Shuppan, 2011.

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3

Maier, Stefan A. Plasmonics: Fundamentals and Applications. New York, NY: Springer US, 2007. http://dx.doi.org/10.1007/0-387-37825-1.

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4

Shahbazyan, Tigran V., and Mark I. Stockman, eds. Plasmonics: Theory and Applications. Dordrecht: Springer Netherlands, 2013. http://dx.doi.org/10.1007/978-94-007-7805-4.

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5

Zouhdi, Saïd, Ari Sihvola, and Alexey P. Vinogradov, eds. Metamaterials and Plasmonics: Fundamentals, Modelling, Applications. Dordrecht: Springer Netherlands, 2009. http://dx.doi.org/10.1007/978-1-4020-9407-1.

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6

Turunen, Anton E. Plasmons: Structure, properties, and applications. Hauppauge, N.Y: Nova Science Publishers, 2011.

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7

Computational methods for nanoscale applications: Particles, plasmons and waves. New York: Springer, 2008.

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8

Albert, Challener William, ed. Modern introduction to surface plasmons: Theory, mathematica modeling, and applications. New York: Cambridge University Press, 2010.

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9

Sarid, Dror. Modern introduction to surface plasmons: Theory, Mathematica modeling, and applications. Cambridge: Cambridge University Press, 2010.

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10

Kawata, Satoshi. Plasmonics: Nanoimaging, nanofabrication, and their applications IV : 10-14 August 2008, San Diego, California, USA. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2008.

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11

Society of Photo-optical Instrumentation Engineers, ed. Plasmonics: Nanoimaging, nanofabrication, and their applications III : 28-30 August 2007, San Diego, California, USA. Bellingham, Wash: SPIE, 2007.

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12

1966-, Kawata Satoshi, Shalaev Vladimir M. 1957-, Tsai Din P. 1959-, and Society of Photo-optical Instrumentation Engineers., eds. Plasmonics: Nanoimaging, nanofabrication, and their applications II : 16-17 August, 2006, San Diego, California, USA. Bellingham, Wash: SPIE, 2006.

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13

Zhang, Zhenglong. Plasmonic Photocatalysis: Principles and Applications. Springer, 2022.

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14

Denizli, Adil. Plasmonic Sensors and Their Applications. Wiley & Sons, Incorporated, John, 2021.

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15

Li, Yongqian. Plasmonic Optics: Theory and Applications. SPIE, 2017. http://dx.doi.org/10.1117/3.2263757.

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16

Denizli, Adil, ed. Plasmonic Sensors and their Applications. Wiley, 2021. http://dx.doi.org/10.1002/9783527830343.

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17

Denizli, Adil. Plasmonic Sensors and Their Applications. Wiley & Sons, Limited, John, 2021.

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18

Denizli, Adil. Plasmonic Sensors and Their Applications. Wiley & Sons, Incorporated, John, 2021.

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19

Li, Yonggian. Plasmonic Optics: Theory and Applications. SPIE, 2017.

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20

Denizli, A. Plasmonic Sensors and Their Applications. Wiley & Sons, Limited, John, 2021.

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21

Plasmonic Resonators: Fundamentals, Advances, and Applications. Taylor & Francis Group, 2016.

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22

Cortés, Emiliano, and Pedro H. C. Camargo. Plasmonic Catalysis: From Fundamentals to Applications. Wiley & Sons, Limited, John, 2021.

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23

Cortés, Emiliano, and Pedro H. C. Camargo. Plasmonic Catalysis: From Fundamentals to Applications. Wiley & Sons, Incorporated, John, 2021.

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24

Cortés, Emiliano, and Pedro H. C. Camargo. Plasmonic Catalysis: From Fundamentals to Applications. Wiley & Sons, Incorporated, John, 2021.

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25

Iwanaga, Masanobu. Plasmonic Resonators: Fundamentals, Advances, and Applications. Jenny Stanford Publishing, 2016.

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26

Iwanaga, Masanobu. Plasmonic Resonators: Fundamentals, Advances, and Applications. Jenny Stanford Publishing, 2016.

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27

Cortés, Emiliano, and Pedro H. C. Camargo. Plasmonic Catalysis: From Fundamentals to Applications. Wiley & Sons, Limited, John, 2021.

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28

Kan, C. Plasmonic Metal Nanostructures - Preparation, Characterization and Applications. Wiley & Sons, Limited, John, 2024.

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29

Agrawal, Niteshkumar, Rajan Jha, Santosh Kumar, and Chinmoy Saha. Optical Fiber-Based Plasmonic Biosensors: Trends, Techniques, and Applications. Taylor & Francis Group, 2022.

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30

Agrawal, Niteshkumar, Rajan Jha, Santosh Kumar, and Chinmoy Saha. Optical Fiber-Based Plasmonic Biosensors: Trends, Techniques and Applications. Taylor & Francis Group, 2022.

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31

Agrawal, Niteshkumar, Rajan Jha, Santosh Kumar, and Chinmoy Saha. Optical Fiber-Based Plasmonic Biosensors: Trends, Techniques and Applications. Taylor & Francis Group, 2022.

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32

Optical Fiber-Based Plasmonic Biosensors: Trends, Techniques and Applications. CRC Press LLC, 2022.

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33

Agrawal, Niteshkumar, Rajan Jha, Santosh Kumar, and Chinmoy Saha. Optical Fiber-Based Plasmonic Biosensors: Trends, Techniques and Applications. Taylor & Francis Group, 2022.

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34

Fasolato, Claudia. Surface Enhanced Raman Spectroscopy for Biophysical Applications: Using Plasmonic Nanoparticle Assemblies. Springer, 2018.

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35

Miandashti, Ali Rafiei, Susil Baral, Eva Yazmin Santiago, Larousse Khosravi Khorashad, Alexander O. Govorov, and Hugh H. Richardson. Photo-Thermal Spectroscopy with Plasmonic and Rare-Earth Doped Materials: Basic Principles and Applications. Springer, 2018.

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36

Basu, Prasanta Kumar, Bratati Mukhopadhyay, and Rikmantra Basu. Semiconductor Nanophotonics. Oxford University PressOxford, 2022. http://dx.doi.org/10.1093/oso/9780198784692.001.0001.

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Abstract Nanometre sized structures made of semiconductors, insulators and metals and grown by modern growth technologies or by chemical synthesis exhibit novel electronic and optical phenomena due to confinement of electrons and photons. Strong interactions between electrons and photons in narrow regions lead to inhibited spontaneous emission, thresholdless laser operation, and Bose Einstein condensation of exciton-polaritons in microcavities. Generation of sub-wavelength radiation by surface Plasmon-polaritons at metal-semiconductor interfaces, creation of photonic band gap in dielectrics, and realization of nanometer sized semiconductor or insulator structures with negative permittivity and permeability, known as metamaterials, are further examples in the area of nanophotonics. The studies help develop Spasers and plasmonic nanolasers of subwavelength dimensions, paving the way to use plasmonics in future data centres and high speed computers working at THz bandwidth with less than a few fJ/bit dissipation. The present book intends to serveas a textbook for graduate students and researchers intending to have introductory ideas of semiconductor nanophotonics. It gives an introduction to electron-photon interactions in quantum wells, wires and dots and then discusses the processes in microcavities, photonic band gaps and metamaterials and related applications. The phenomena and device applications under strong light-matter interactions are discussed by mostly using classical and semi-classical theories. Numerous examples and problems accompany each chapter.
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37

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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38

Wohlbier, Thomas. Nanohybrids. Materials Research Forum LLC, 2021. http://dx.doi.org/10.21741/9781644901076.

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The book covers preparation, designing and utilization of nanohybrid materials for biomedical applications. These materials can improve the effectiveness of drugs, promote high cell growth in new scaffolds, and lead to biodegradable surgical sutures. The use of hybrid magneto-plasmonic nanoparticles may lead to non-invasive therapies. The most promising materials are based on silica nanostructures, polymers, bioresorbable metals, liposomes, biopolymeric electrospun nanofibers, graphene, and gelatin. Much research focuses on the development of biomaterials for cell regeneration and wound healing applications.
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39

Maier, Stefan Alexander. Plasmonics: Fundamentals and Applications. Springer London, Limited, 2007.

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40

Plasmonics and its Applications. MDPI, 2019. http://dx.doi.org/10.3390/books978-3-03897-915-9.

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41

Stockman, Mark I., and Tigran V. Shahbazyan. Plasmonics: Theory and Applications. Springer, 2014.

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42

Kim, Ki Young, ed. Plasmonics - Principles and Applications. InTech, 2012. http://dx.doi.org/10.5772/2633.

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43

Stockman, Mark I., and Tigran V. Shahbazyan. Plasmonics: Theory and Applications. Springer London, Limited, 2014.

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44

Plasmonics: Fundamentals and Applications. Springer, 2007.

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45

Maier, Stefan Alexander. Plasmonics: Fundamentals and Applications. Springer, 2010.

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46

Stockman, Mark I., and Tigran V. Shahbazyan. Plasmonics: Theory and Applications. Springer, 2014.

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47

Stockman, Mark I., and Tigran V. Shahbazyan. Plasmonics: Theory and Applications. Springer, 2016.

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48

Chegel, Volodymyr I., and Andrii M. Lopatynskyi. Molecular Plasmonics: Theory and Applications. Jenny Stanford Publishing, 2020.

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49

Molecular Plasmonics: Theory and Applications. Jenny Stanford Publishing, 2020.

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50

Chegel, Volodymyr, and Andrii Lopatynskyi. Molecular Plasmonics: Theory and Applications. Taylor & Francis Group, 2020.

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