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1

Xing, Zhu, and Ohtsu Motoichi, eds. Near-field optics: Principles and applications : the second Asia-Pacific Workshop on Near Field Optics, Beijing, China, October 20-23, 1999. Singapore: World Scientific, 2000.

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2

Ohtsu, Motoichi. Near-field nano-optics: From basic principles to nano-fabrication and nano-photonics. New York: Kluwer Academic/Plenum Publishers, 1999.

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3

Near-field microscopy and near-field optics. London: Imperial College Press, 2003.

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4

1968-, Hecht Bert, ed. Principles of nano-optics. Cambridge: Cambridge University Press, 2012.

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5

Zhang, Peng. Development of a near-field scanning optical microscope and its application in studying the optical mode localization of self-affine Ag colloidal films. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1998.

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6

V, Zayats A., and Richards David Prof, eds. Nano-optics and near-field optical microscopy. Boston: Artech House, 2009.

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7

Fabrication of Silicon Microprobes for Optical Near-Field Applications. CRC, 2002.

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8

Atomic Force Microscopy, Scanning Nearfield Optical Microscopy and Nanoscratching: Application to Rough and Natural Surfaces (NanoScience and Technology). Springer, 2006.

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9

(Editor), Xing Zhu, and Motoichi Ohtsu (Editor), eds. 2AP NFO Near-Field Optics: Principes and Applications: The Second Asia Pacific Workshop on Near Field Optics. World Scientific Publishing Company, 2000.

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10

Suganda, Jutamulia, Asakura Toshimitsu 1934-, and Society of Photo-optical Instrumentation Engineers., eds. Far- and near-field optics: Physics and information processing : 23-24 July 1998, San Diego, California. Bellingham, Wash., USA: SPIE, 1998.

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11

Motoichi, Ohtsu, Jutamulia Suganda, Asakura Toshimitsu 1934-, and Society of Photo-optical Instrumentation Engineers., eds. Near-field optics: Physics, devices, and information processing : 22-23 July, 1999, Denver, Colorado. Bellingham, Wash: SPIE, 1999.

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12

Optical Near Fields: Introduction to Classical and Quantum Theories of Electromagnetic Phenomena at the Nanoscale (Advanced Texts in Physics). Springer, 2004.

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13

Xing, Zhu, Chou Stephen Y, Arakawa Yasuhiko, Society of Photo-optical Instrumentation Engineers., Zhongguo guang xue xue hui., Shanghai jiao tong da xue., and Guo jia zi ran ke xue ji jin wei yuan hui (China), eds. Nano-optics and nano-structures: 15-16 October, 2002, Shanghai, China. Bellingham, Washington: SPIE, 2003.

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14

Nano-optics and Nano-structures (SPIE Proceedings). SPIE Society of Photo-Optical Instrumentation Engi, 2002.

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15

Hori, Hirokazu, and Motoichi Ohtsu. Near-Field Nano-Optics: From Basic Principles to Nano-Fabrication and Nano-Photonics (Lasers, Photonics, and Electro-Optics). Springer, 1999.

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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. Bellingham, Wash., USA: SPIE, 2000.

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17

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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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, and prospects for high spatial resolution in near-field FTIR spectroscopy. Finally, it describes the spectroscopic detection of small particles, along with the use of the analysis paradigm to discriminate nanomolecular cellular alterations in biomedical research.
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18

Yang, Seung Yun. Imaging silver nanowire using near-field scanning optical microscope. 2001.

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19

Nagy, Noemi Zsuzsanna. Development of a hybrid near-field scanning optical chemical probe microscope. 2002, 2002.

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20

Nagy, Noémi Zsuzsanna. Development of a hybrid near-field scanning optical chemical probe microscope. 2002.

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21

Motoichi, Ohtsu, ed. Near-field nano/atom optics and technology. Berlin: Springer-Verlag, 1998.

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22

1966-, Kawata Satoshi, Ohtsu Motoichi, and Irie Masahiro, eds. Nano-optics. Berlin: Springer, 2002.

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23

1966-, Kawata Satoshi, Ohtsu Motoichi, and Irie Masahiro, eds. Nano-optics. Berlin: Springer, 2002.

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24

(Editor), Satoshi Kawata, Motoichi Ohtsu (Editor), and Masahiro Irie (Editor), eds. Nano-Optics. Springer, 2002.

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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

Principles of Nano-Optics. Cambridge University Press, 2006.

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27

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

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28

(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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