Книги з теми "Near infrared imaging probes"

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1

Raman, infrared, and near-infrared chemical imaging. Hoboken, N.J: Wiley, 2010.

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2

Šašić, Slobodan, and Yukihiro Ozaki, eds. Raman, Infrared, and Near-Infrared Chemical Imaging. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2010. http://dx.doi.org/10.1002/9780470768150.

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3

Siegfried, Dähne, Resch-Genger Ute, Wolfbeis Otto S, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Research Workshop on Syntheses, Optical Properties and Applications of Near-Infrared (NIR) Dyes in High Technology Fields (1997 : Třešt̕, Czechoslovakia), eds. Near-infrared dyes for high technology applications. Dordrecht: Kluwer, 1998.

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4

Aleassa, Essa M., and Kevin M. El-Hayek, eds. Video Atlas of Intraoperative Applications of Near Infrared Fluorescence Imaging. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-38092-2.

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5

(Society), SPIE, Optical Society of America, and European Optical Society, eds. Diffuse optical imaging II: 14-17 June 2009, Munich, Germany. Bellingham, Wash: SPIE, 2009.

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6

Hielscher, Andreas H. Diffuse optical imaging III: 22-24 May 2011, Munich, Germany. Edited by SPIE (Society), Optical Society of America, Deutsche Gesellschaft für Lasermedizin, German Biophotonics Research Program, Photonics4Life (Group), and United States. Air Force. Office of Scientific Research. Bellingham, Wash: SPIE, 2011.

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7

Ozaki, Yukihiro, and Slobodan Sasic. Raman, Infrared, and near-Infrared Chemical Imaging. Wiley & Sons, Incorporated, John, 2010.

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8

Ozaki, Yukihiro, and Slobodan Sasic. Raman, Infrared, and near-Infrared Chemical Imaging. Wiley & Sons, Incorporated, John, 2011.

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9

Ozaki, Yukihiro, and Slobodan Sasic. Raman, Infrared, and near-Infrared Chemical Imaging. Wiley & Sons, Incorporated, John, 2011.

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10

Ozaki, Yukihiro, and Slobodan Sasic. Raman, Infrared, and near-Infrared Chemical Imaging. Wiley & Sons, Incorporated, John, 2011.

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11

Ozaki, Yukihiro, and Slobodan Sasic. Raman, Infrared, and near-Infrared Chemical Imaging. Wiley & Sons, Incorporated, John, 2010.

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12

Aleassa, Essa M., and Kevin M. El-Hayek. Video Atlas of Intraoperative Applications of Near Infrared Fluorescence Imaging. Springer, 2020.

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13

Aleassa, Essa M., and Kevin M. El-Hayek. Video Atlas of Intraoperative Applications of near Infrared Fluorescence Imaging. Springer International Publishing AG, 2021.

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14

Buscher, David F., and Malcolm Longair. Practical Optical Interferometry: Imaging at Visible and near-Infrared Wavelengths. Cambridge University Press, 2015.

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15

Longair, Malcolm. Practical Optical Interferometry: Imaging at Visible and near-Infrared Wavelengths. Cambridge University Press, 2017.

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16

Gerhard, Litscher, and Schwarz Gerhard, eds. Transcranial cerebral oximetry. Lengerich: Pabst Science, 1997.

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17

W, Hogg David, and United States. National Aeronautics and Space Administration., eds. Near infrared imaging of the Hubble deep field with the Keck telescope. [Washington, D.C: National Aeronautics and Space Administration, 1997.

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18

Near infrared imaging of the Hubble deep field with the Keck telescope. [Washington, D.C: National Aeronautics and Space Administration, 1997.

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19

(Editor), Arno Villringer, and Ulrich Dirnagl (Editor), eds. Optical Imaging of Brain Function and Metabolism 2: Physiological Basis and Comparison to other Functional Neuroimaging Methods (Advances in Experimental Medicine and Biology). Springer, 1997.

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20

Arno, Villringer, Dirnagl Ulrich, and International Symposium on Optical Imaging and Metabolism (1995 : Berlin, Germany), eds. Optical imaging of brain function and metabolism 2: Physiological basis and comparison to other functional neuroimaging methods. New York: Plenum Press, 1997.

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21

Schmidtobreick, Linda, Henri M. J. Boffin, Gaitee Hussain, and Jean-Philippe Berger. Astronomy at High Angular Resolution: A Compendium of Techniques in the Visible and Near-Infrared. Springer London, Limited, 2016.

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22

Schmidtobreick, Linda, Henri M. J. Boffin, Gaitee Hussain, and Jean-Philippe Berger. Astronomy at High Angular Resolution: A Compendium of Techniques in the Visible and Near-Infrared. Springer International Publishing AG, 2018.

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23

Schmidtobreick, Linda, Henri M. J. Boffin, Gaitee Hussain, and Jean-Philippe Berger. Astronomy at High Angular Resolution: A Compendium of Techniques in the Visible and Near-Infrared. Springer, 2016.

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24

Mazdeyasna, Siavash, Chong Huang, Guoqiang Yu, Daniel Irwin, and Lei Chen. Near-Infrared Speckle Contrast Diffuse Correlation Tomography for Noncontact Imaging of Tissue Blood Flow Distribution. Taylor & Francis Group, 2022.

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25

Mazdeyasna, Siavash, Chong Huang, Mehrana Mohtasebi, Xuhui Lui, and Daniel Irwin. Near-Infrared Speckle Contrast Diffuse Correlation Tomography for Noncontact Imaging of Tissue Blood Flow Distribution. Taylor & Francis Group, 2022.

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26

Mazdeyasna, Siavash, Chong Huang, Mehrana Mohtasebi, Xuhui Lui, and Daniel Irwin. Near-Infrared Speckle Contrast Diffuse Correlation Tomography for Noncontact Imaging of Tissue Blood Flow Distribution. Taylor & Francis Group, 2022.

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27

Mazdeyasna, Siavash, Chong Huang, Mehrana Mohtasebi, Xuhui Lui, and Daniel Irwin. Near-Infrared Speckle Contrast Diffuse Correlation Tomography for Noncontact Imaging of Tissue Blood Flow Distribution. Taylor & Francis Group, 2022.

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28

Kodali, Anil K., and Rohit Bhargava. Nanostructured probes to enhance optical and vibrational spectroscopic imaging for biomedical applications. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.15.

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Анотація:
This article describes the use of nanostructured probes to enhance optical and vibrational spectroscopic imaging for biomedical applications. Engineered probes and surfaces are promising tools for enhancing signals for ultrasensitive detection of diseases like carcinoma. Two methods of interest are surface-enhanced infrared absorption (SEIRA) spectroscopy and surface-enhanced Raman spectroscopy (SERS) for IR and Raman modalities, respectively. SERS and SEIRA can be broadly categorized under a common modality termed surface-enhanced vibrational spectroscopy. This article first reviews various breakthrough findings reported in SERS and SEIRA, along with different types ofsubstrates and contrast agents used in realizing the enhancement and theories proposed to explain these findings. It then considers the configurations of nano-LAMPs and presents example results demonstrating their optical resonances and tunability. Finally, it evaluates a few techniques for fabricating multilayered nanoparticles and highlights some issues with respect to fabrication.
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29

(Editor), Max Diem, Peter R. Griffiths (Editor), and John M. Chalmers (Editor), eds. Vibrational Spectroscopy for Medical Diagnosis. Wiley, 2008.

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30

K, Matthews, and United States. National Aeronautics and Space Administration., eds. The first diffraction-limited images from the W.M. Keck Telescope. [Washington, D.C: National Aeronautics and Space Administration, 1996.

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31

Laboratory, Los Alamos National, and United States. National Aeronautics and Space Administration., eds. Angular signatures, and a space-borne measurement concept. [Los Alamos, N.M.]: Los Alamos National Laboratory, 1996.

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32

Wolfram, Freudling, and Hook Richard N, eds. NICMOS and the VLT: A new era of high resolution near infrared imaging and spectroscopy : an international workshop held in Pula, Sardinia, Italy, May 26-27, 1998. Garching, Germany: European Southern Observatory, 1998.

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33

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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Анотація:
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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34

South, Mikle, John D. Herrington, and Sarah J. Paterson. Neuroimaging in Autism Spectrum Disorders. Oxford University Press, 2013. http://dx.doi.org/10.1093/med/9780199744312.003.0003.

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This chapter reviews several major themes in the neuroimaging of ASDs to date (see summary of representative themes in Table 3.1), including substantial and essential contributions from the modular framework. The chapter begins, however, with a discussion of several challenges related to the diversity of ASDs in terms of factors such as age, level of functioning, and symptom presentation. Progress in the ability to identify more homogenous subgroups, based on targeted phenotypic measures, opens the door to link neuroimaging with genetics findings and also with treatment outcome data. This should lead to better understanding of both the causes of ASDs and the best approaches to intervention. The chapter is divided according to two broad, related themes related to social information processing and cognitive factors in ASDs. Within these themes, the chapter considers evidence from both structural and functional imaging studies as well as relatively newer approaches to connectivity, including diffusion tensor imaging. The primary focus of this chapter is on research utilizing functional magnetic resonance imaging (fMRI) and electroencephalography (EEG). Although several early neuroimaging studies utilized positron emission tomography scanning, these studies are rare now and are not addressed in depth. New techniques such as near-infrared spectroscopy suggest tremendous promise for noninvasive imaging of expanded age groups and severity levels of ASDs; however, these studies are also few in number and are touched on only briefly.
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