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1

Zhang, Shu-Lin. Raman spectroscopy of nanostructures. Hoboken, N.J: Wiley, 2012.

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2

Jorio, A. Raman spectroscopy in graphene related systems. Weinheim, Germany: Wiley-VCH, 2011.

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3

Laman guang pu xue yu di wei na mi ban dao ti. Beijing: Ke xue chu ban she, 2008.

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4

Tan, Ping-Heng, ed. Raman Spectroscopy of Two-Dimensional Materials. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-1828-3.

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5

service), SpringerLink (Online, ed. Raman Spectroscopy for Nanomaterials Characterization. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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6

Zhang, Jin Z. Optical properties and spectroscopy of nanomaterials. Hackensack, N.J: World Scientific, 2009.

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7

Zhang, Jin Z. Optical properties and spectroscopy of nanomaterials. Hackensack, N.J: World Scientific, 2009.

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8

NATO, Advanced Study Institute on Spectroscopy of Systems with Spatially Confined Structures (2001 Erice Italy). Spectroscopy of systems with spatially confined structures. Dordrecht: Kluwer Academic Publishers, 2002.

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9

Baldassare, Di Bartolo, ed. Spectroscopy of systems with spatially confined structures. Dordrecht: Kluwer Academic Publishers, in cooperation with NATO Scientific Affairs Division, 2002.

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10

Ultrafast spectroscopy of semiconductors and semiconductor nanostructures. Berlin: Springer, 1996.

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11

America, Mineralogical Society of, and Geochemical Society, eds. Spectroscopic methods in mineralogy and materials sciences. Chantilly, Virginia: Mineralogical Society of America, 2014.

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12

X-Rays in nanoscience: Spectroscopy, spectromicroscopy, and scattering techniques. Weinheim: Wiley-VCH, 2010.

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13

(Firm), Lucent Technologies, ed. Ultrafast spectroscopy of semiconductors and semiconductor nanostructures. 2nd ed. Berlin: Springer Verlag, 1999.

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14

Shah, J. Ultrafast spectroscopy of semiconductors and semiconductor nanostructures. Berlin: Springer, 1996.

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15

V, Shuvalov Vladimir, Zheltikov Alexei M, Scientific Council for Coherent and Nonlinear Optics (Rossiīskai͡a︡ akademii͡a︡ nauk., and Society of Photo-optical Instrumentation Engineers., eds. ICONO '95: Nonlinear spectroscopy and ultrafast phenomena, 27 June-1 July, 1995, St. Petersburg, Russia. Bellingham, Wash: SPIE, 1996.

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16

ICONO '95 (1995 Saint Petersburg, Russia). ICONO '95: Nonlinear optics of low-dimensional structures and new materials, 27 June-1 July, 1995, St. Petersburg, Russia. Edited by Emelʹi͡a︡nov V. I, Panchenko Vladislav I͡A︡kovlevich, Scientific Council for Coherent and Nonlinear Optics (Rossiīskai͡a︡ akademii͡a︡ nauk), and Society of Photo-optical Instrumentation Engineers. Bellingham, Wash: SPIE, 1996.

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17

N, Bagayev S., Chirkin Anatoliĭ Stepanovich, Scientific Council for Coherent and Nonlinear Optics (Rossiīskai͡a︡ akademii͡a︡ nauk., and Society of Photo-optical Instrumentation Engineers., eds. ICONO '95: Atomic and quantum optics : high-precision measurements, 27 June-1 July, 1995, St. Petersburg, Russia. Bellingham, Wash: SPIE, 1996.

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18

Achilefu, Samuel. Genetically engineered and optical probes for biomedical applications IV: 23-24 January 2007, San Jose, California, USA. Edited by Society of Photo-optical Instrumentation Engineers. Bellingham, Wash: SPIE, 2007.

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19

Svenson, Sonke. Multifunctional Nanoparticles for Drug Delivery Applications: Imaging, Targeting, and Delivery. Boston, MA: Springer US, 2012.

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20

ZnO bao mo zhi bei ji qi guang, dian xing neng yan jiu. Shanghai Shi: Shanghai da xue chu ban she, 2010.

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21

Hayazawa, Norihiko, and Prabhat Verma. Nanoanalysis of materials using near-field Raman spectroscopy. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.10.

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This article describes the use of tip-enhanced near-field Raman spectroscopy for the characterization of materials at the nanoscale. Tip-enhanced near-field Raman spectroscopy utilizes a metal-coated sharp tip and is based on surface-enhanced Raman scattering (SERS). Instead of the large surface enhancement from the metallic surface in SERS, the sharp metal coated tip in the tip-enhanced Raman scattering (TERS) provides nanoscaled surface enhancement only from the sample molecules in the close vicinity of the tip-apex, making it a perfect technique for nanoanalysis of materials. This article focuses on near-field analysis of some semiconducting nanomaterials and some carbon nanostructures. It first considers SERS analysis of strained silicon and TERS analysis of epsilon-Si and GaN thin layers before explaining how to improve TERS sensitivity and control the polarization in detection for crystalline materials. It also discusses ways of improving the spatial resolution in TERS.
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22

Egner, Alexander, and Prabhat Verma. Nanoimaging and Nanospectroscopy V. SPIE, 2018.

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23

1966-, Kawata Satoshi, and Shalaev Vladimir M. 1957-, eds. Tip enhancement. Amsterdam: Elsevier, 2007.

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24

(Editor), Satoshi Kawata, and Vladimir M. Shalaev (Editor), eds. Tip Enhancement (Advances in Nano-Optics and Nano-Photonics). Elsevier Science, 2007.

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25

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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26

L, Andrews David, and Society of Photo-optical Instrumentation Engineers., eds. Optical devices and diagnostics in materials science: 1-4 August 2000, San Diego, USA. Bellingham, Wash., USA: SPIE, 2000.

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27

Tan, Ping-Heng. Raman Spectroscopy of Two-Dimensional Materials. Springer, 2018.

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28

1942-, Weber Willes H., and Merlin R. 1950-, eds. Raman scattering in materials science. Berlin: Springer, 2000.

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29

Yan, Bing, and Hans-Ulrich Gremlich. Infrared and Raman Spectroscopy of Biological Materials (Practical Spectroscopy). CRC, 2000.

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30

Hans-Ulrich, Gremlich, and Yan Bing 1957-, eds. Infrared and Raman spectroscopy of biological materials. New York: Marcel Dekker, 2001.

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31

(Editor), Willes H. Weber, and Roberto Merlin (Editor), eds. Raman Scattering in Materials Science (Springer Series in Materials Science). Springer, 2000.

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32

1927-, Weber Alfons, and National Institute of Standards and Technology (U.S.), eds. Workshop on Raman Spectroscopy in Optical and Materials Sciences. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1996.

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33

Stephen, Braiman Mark, and Gregoriou Vasilis G, eds. Vibrational spectroscopy of biological and polymeric materials. Boca Raton: Taylor & Francis, 2005.

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34

Vibrational spectroscopy of biological and polymeric materials. Boca Raton, FL: CRC/Taylor & Francis, 2006.

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35

Kulchin, Yuri N., Sergey I. Pokutnyi, Vladimir P. Dzyuba, and Wlodzimierz Salejda. Optics and Spectroscopy of Exciton States in Quasi-Zero-Dimensional Nanosystems. Nova Science Publishers, Incorporated, 2016.

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36

Uvvis And Photoluminescence Spectroscopy For Nanomaterials Characterization. Springer, 2012.

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37

Yuryea, Elmira I. Quantum Chemistry and Nuclear Resonance Spectroscopy Data of Natural and Synthetic Nanotechnological Materials With Nd-metal Atoms Participations. Nova Science Pub Inc, 2007.

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38

(Editor), Y. Watanabe, S. Heun (Editor), G. Salviati (Editor), and N. Yamamoto (Editor), eds. Nanoscale Spectroscopy and Its Applications to Semiconductor Research. Springer, 2003.

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39

Guo, Jinghua. X-Rays in Nanoscience: Spectroscopy, Spectromicroscopy, and Scattering Techniques. Wiley & Sons, Limited, John, 2010.

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40

Guo, Jinghua. X-Rays in Nanoscience: Spectroscopy, Spectromicroscopy, and Scattering Techniques. Wiley & Sons, Incorporated, John, 2011.

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41

Guo, Jinghua. X-Rays in Nanoscience: Spectroscopy, Spectromicroscopy, and Scattering Techniques. Wiley & Sons, Incorporated, John, 2011.

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42

Guo, Jinghua. X-Rays in Nanoscience: Spectroscopy, Spectromicroscopy, and Scattering Techniques. Wiley & Sons, Incorporated, John, 2011.

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43

CondensedPhase Molecular Spectroscopy and Photophysics. John Wiley and Sons Ltd, 2013.

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44

Chen, Weimin. White beam synchrotron x-ray topography and micro-raman spectroscopy characterization of crystal materials. 2003.

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45

Recent Developments in Atomic Force Microscopy and Raman Spectroscopy for Materials Characterization [Working Title]. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.94185.

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46

Musa, Sarhan M. Nanoscale Spectroscopy with Applications. Taylor & Francis Group, 2017.

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47

Nanoscale Spectroscopy with Applications. Taylor & Francis Group, 2013.

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48

Multi Frequency EPR Spectroscopy of Conjugated Polymers and Their Nanocomposites. Taylor & Francis Group, 2016.

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49

Bartolo, Baldassare di. Spectroscopy of Systems with Spatially Confined Structures (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2003.

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50

Spectroscopy of Systems with Spatially Confined Structures (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2003.

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