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1

Olaf, Hollricher, Toporski Jan, and SpringerLink (Online service), eds. Confocal Raman Microscopy. Springer-Verlag Berlin Heidelberg, 2011.

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2

Toporski, Jan, Thomas Dieing, and Olaf Hollricher, eds. Confocal Raman Microscopy. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-75380-5.

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3

Dieing, Thomas, Olaf Hollricher, and Jan Toporski, eds. Confocal Raman Microscopy. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-12522-5.

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4

Cheng, Ji-Xin, and Xiaoliang Sunney Xie. Coherent Raman scattering microscopy. CRC Press, 2013.

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5

Xiong, Hanqing. Stimulated Raman Excited Fluorescence Spectroscopy and Microscopy. [publisher not identified], 2020.

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6

A, Asher S., and Stein P, eds. Fifteenth International Conference on Raman Spectroscopy. McGraw-Hill, 1996.

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7

service), SpringerLink (Online, ed. Raman Imaging: Techniques and Applications. Springer Berlin Heidelberg, 2012.

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8

International, Conference on Raman Spectroscopy (15th 1996 Pittsburgh Pa ). Fifteenth International Conference on Raman Spectroscopy: Proceedings of the Fifteenth International Conference on Raman Spectroscopy, August 11-16, 1996, Pittsburgh, Pa, USA. John Wiley, 1996.

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9

Wei, Mian. Development of advanced Raman microscopy methods to interrogate the brain. [publisher not identified], 2021.

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10

1939-, Morris Michael D., ed. Microscopic and spectroscopic imaging of the chemical state. M. Dekker, 1993.

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11

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

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12

Alcock, Robert David. Conf ocal Raman microscope with high optical transmission and versatile software control. Universityof Manchester, 1997.

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13

Miao, Yupeng. Applications of Stimulated Raman Scattering Microscopy: From Label-free to Molecular Probes. [publisher not identified], 2021.

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14

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

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15

United States. National Aeronautics and Space Administration., ed. Scanning tunneling microscopy studies of diamond films and optoelectronic materials: Progress report, 12/1/92 - 10/1/93. National Aeronautics and Space Administration, 1993.

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16

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. SPIE, 2000.

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17

Toporski, Jan, Thomas Dieing, and Olaf Hollricher. Confocal Raman Microscopy. Springer, 2013.

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18

Raman Microscopy. Elsevier, 1996. http://dx.doi.org/10.1016/b978-0-12-189690-4.x5018-2.

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19

Confocal Raman Microscopy. Springer, 2019.

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20

Toporski, Jan, Thomas Dieing, and Olaf Hollricher. Confocal Raman Microscopy. Springer, 2018.

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21

Stimulated Raman Scattering Microscopy. Elsevier, 2022. http://dx.doi.org/10.1016/c2020-0-01880-3.

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22

Cheng, Ji-Xin, and Xiaoliang Sunney Xie. Coherent Raman Scattering Microscopy. Taylor & Francis Group, 2018.

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23

Coherent Raman Scattering Microscopy. Taylor & Francis Group, 2016.

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24

Cheng, Ji-Xin, and Xiaoliang Sunney Xie. Coherent Raman Scattering Microscopy. Taylor & Francis Group, 2016.

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25

Graupner, R., and F. Hauke. Functionalization of single-walled carbon nanotubes: Chemistry and characterization. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.16.

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Abstract (sommario):
This article examines the chemical functionalization and structural alteration of single-walled carbon nanotubes (SWCNTs). It describes the covalent functionalization of the SWCNT framework that is the covalent attachment of functional entities onto the CNT scaffold. In particular, it considers the chemical modification and reactivity of SWCNTs in the context of the reactivity of graphite and fullerenes. It also discusses the defect and sidewall functionalization of SWCNTs, along with various techniques used in the characterization ofSWCNTs upon functionalization, namely: thermogravimetric ana
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26

(Editor), George Turrell, and Jacques Corset (Editor), eds. Raman Microscopy: Developments and Applications. Academic Press, 1996.

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27

(Editor), George Turrell, and Jacques Corset (Editor), eds. Raman Microscopy: Developments and Applications. Academic Press, 1996.

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28

Sails, Stephanie Rachael. Raman microscopy of diamond films. 1995.

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29

Parr, A. A. Raman microscopy studies of polysilicon. 2000.

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30

Freudiger, Christian Wilhelm. Stimulated Raman Scattering (SRS) Microscopy. 2011.

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31

Turrell, George, and Jacques Corset. Raman Microscopy: Developments and Applications. Elsevier Science & Technology Books, 1996.

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32

Rzhevskii, Alexander. Modern Raman Microscopy: Technique and Practice. Cambridge Scholars Publisher, 2021.

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33

Fifteenth International Conference on Raman Spectroscopy: Proceedings of the Fifteenth International Conference on Raman Spectroscopy, August 11-16, 1996, ... on Raman Spectroscopy//Proceedings). John Wiley & Sons Inc, 1996.

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34

Hall, Mandy. Investigation of pathological biomineralisation using Raman microscopy. 1994.

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35

Niksic, Miomir, Dejan Lazic, and Biljana Vucelic-Radovic. Application of Molecular Methods and Raman Microscopy. Saint Philip Street Press, 2020.

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36

Ozeki, Yasuyuki, Ji-Xin Cheng, Wei Min, and Dario Polli. Stimulated Raman Scattering Microscopy: Techniques and Applications. Elsevier, 2021.

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37

Niksic, Miomir, Dejan Lazic, and Biljana Vucelic-Radovic. Application of Molecular Methods and Raman Microscopy. Saint Philip Street Press, 2020.

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38

Ozeki, Yasuyuki, Ji-Xin Cheng, Wei Min, and Dario Polli. Stimulated Raman Scattering Microscopy: Techniques and Applications. Elsevier, 2021.

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39

Chang, Richard. Surface Enhanced Raman Scattering. Springer London, Limited, 2013.

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40

Raman Imaging Techniques And Applications. Springer-Verlag Berlin and Heidelberg GmbH &, 2012.

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41

Zoubir, Arnaud. Raman Imaging: Techniques and Applications. Springer, 2012.

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42

Zoubir, Arnaud. Raman Imaging: Techniques and Applications. Springer Berlin / Heidelberg, 2014.

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43

Martin, Francis L., and Hubert M. Pollock. Microspectroscopy as a tool to discriminate nanomolecular cellular alterations in biomedical research. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.8.

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Abstract (sommario):
This article considers the use of microspectroscopy for discriminating nanomolecular cellular alterations in biomedical research. It begins with an overview of some existing mid-infrared microspectroscopy techniques, including FTIR microspectroscopy and Raman microspectroscopy. It then discusses near-field techniques such as scanning near-field optical microscopy, near-field Raman microscopy, and photothermal microspectroscopy (PTMS). It also examines promising alternative sources of IR light, possible advantages of using normal atomic force microscopy probes, experimental procedures for PTMS,
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44

Birnie, Joanne. Raman microscope determination of stress distributions in chromium oxide scales. 1989.

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45

Rice, Graham. New methods of raman microscopy using charge coupled devices. 1991.

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46

Littleton, Christopher John. Characterisation of high temperature corrosion products using Raman microscopy. 1987.

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47

Dixon, Nicholas Michael. Raman microscopy of laser damaged dielectric films and optical fibre inclusions. 1990.

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48

Pathak, Chandra Shakher, and Samir Kumar. Recent Developments in Atomic Force Microscopy and Raman Spectroscopy for Materials Characterization. IntechOpen, 2022.

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49

(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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50

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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