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Books on the topic 'Optical emission and absorption spectroscopy'

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1

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Fotometrii͡a︡ : o vozmozhnom i nevozmozhnom v optike. Minsk: "Nauka i tekhnika", 1989.

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2

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Pogloshchenie i ispuskanie sveta kvantovymi sistemami. Minsk: "Navuka i tėkhnika", 1991.

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3

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Kvantovai͡a︡ teorii͡a︡ vzaimodeĭstvii͡a︡ sveta i veshchestva. Minsk: "Navuka i tėkhnika", 1990.

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4

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Osnovnye predstavlenii͡a︡ opticheskoĭ nauki na poroge XX veka. Minsk: "Nauka i tekhnika", 1989.

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5

Elizabeth, Prichard F., ed. Atomic absorption and emission spectroscopy. Chichester: Published on behalf of ACOL, by J. Wiley, 1987.

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6

P, Peèraèmaki, and Royal Society of Chemistry (Great Britain), eds. Spectrochemical analysis by atomic absorption and emission. 2nd ed. Cambridge: Royal Society of Chemistry, 2004.

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7

Van Bokhoven, Jeroen A., and Carlo Lamberti, eds. X-Ray Absorption and X-Ray Emission Spectroscopy. Chichester, UK: John Wiley & Sons, Ltd, 2016. http://dx.doi.org/10.1002/9781118844243.

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8

Platt, Ulrich. Differential optical absorption spectroscopy: Principles and applications. Berlin: Springer, 2008.

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9

Nelis, Thomas. Glow discharge optical emission spectroscopy: A practical guide. Cambridge, UK: Royal Society of Chemistry, 2003.

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10

Jayachandran, Toke. Studies and analyses in support of the oil analysis program. Monterey, California: Naval Postgraduate School, 1986.

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11

D, Travis Larry, and Lacis Andrew A, eds. Scattering, absorption, and emission of light by small particles. Cambridge: Cambridge University Press, 2002.

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12

Lamberti, Carlo, and Jeroen A. van Bokhoven. X-ray absorption and X-ray emission spectroscopy: Theory and applications. Chichester, West Sussex: John Wiley & Sons, Inc., 2015.

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13

Rock, Brian A. Rapid evaluation of ion thruster lifetime using optical emission spectroscopy. [Washington, DC]: National Aeronautics and Space Administration, 1985.

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14

Nugis, T. Long-wavelength emission lines from stellar winds. Tallinn: Valgus, 1985.

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15

Komolov, S. A. Total current spectroscopy of surfaces. Philadelphia: Gordon and Breach Science Publishers, 1992.

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16

Blaise, J. Niveaux d'énergie et spectres atomiques des actinides. [Paris]: Centre national de la recherche scientifique, 1992.

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17

Kovalev, V. P. Vtorichnye ėlektrony. Moskva: Ėnergoatomizdat, 1987.

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18

Komolov, S. A. Integralʹnai͡a︡ vtorichno-ėlektronnai͡a︡ spektroskopii͡a︡ poverkhnosti. Leningrad: Izd-vo Leningradskogo universiteta, 1986.

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19

Barrow, C. A. The determination of thallium in urine, at trace levels, using colorimetry/fluorimetry, flame and flameless atomic absorption spectroscopy and inductively coupled plasma-optical emmission spectroscopy. Wolverhampton: The Polytechnic, Wolverhampton, 1988.

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20

Silva, Christine Alison Da. Photopyroelectric spectroscopy as a non-intrusive technique for the determination of the optical absorption spectra of multiple quantum well samples. Ottawa: National Library of Canada, 1993.

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21

Surzhikov, S. T. Opticheskie svoĭstva gazov i plazmy. Moskva: Moskovskiĭ gos. tekhn. universitet (MGTU), 2004.

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22

Garbarino, John R. Methods of analysis by the U.S. Geological Survey National Water Quality Laboratory: Determination of elements in whole-water digests using inductively coupled plasma-optical emission spectrometry and inductively coupled plasma-mass spectrometry. Denver, Colo: U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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23

Garbarino, John R. Methods of analysis by the U.S. Geological Survey National Water Quality Laboratory: Determination of elements in whole-water digests using inductively coupled plasma-optical emission spectrometry and inductively coupled plasma-mass spectrometry. Denver, Colo: Dept. of the Interior, U.S. Geological Survey, 1998.

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24

Chance, Kelly, and Randall V. Martin. Line Shapes. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199662104.003.0006.

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Line shapes describe how absorption and emission are spectrally distributed around the line positions formed by rotational, vibrational, and electronic transitions. Line shapes arise from the different processes that spectrally broaden the absorption and emission of radiation. Optical thickness and equivalent width are shown to be fundamentally related to line shape. The fundamental line shape functions for atmospheres including the Gaussian line shape due to molecular motion and the Lorentzian line shape from lifetime broadening, including collision (pressure) broadening are described. Their convolution, the Voigt line shape, which is important in some atmospheric conditions is also described. The standard HITRAN database of spectroscopic parameters of molecules for use in calculation of radiative transfer in planetary atmospheres, from radiofrequencies to the near ultraviolet, is introduced.
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25

Differential Optical Absorption Spectroscopy. Berlin, Heidelberg: Springer Berlin Heidelberg, 2008. http://dx.doi.org/10.1007/978-3-540-75776-4.

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26

Glow Discharge Optical Emission Spectroscopy. Cambridge: Royal Society of Chemistry, 2007. http://dx.doi.org/10.1039/9781847550989.

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27

Lajunen, L. H. J., and P. Peramaki. Spectrochemical Analysis by Atomic Absorption and Emission. Royal Society of Chemistry, 2005.

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28

Spectrochemical Analysis by Atomic Absorption and Emission. Royal Society of Chemistry, 1992.

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29

Nelis, T., and R. Payling. Glow Discharge Optical Emission Spectroscopy (Rsc Analytical Spectroscopy Monographs). Royal Society of Chemistry, 2004.

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30

R, Payling, Jones D. G, and Bengtson A, eds. Glow discharge optical emission spectrometry. Chichester: New York, 1997.

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31

Payling, Richard, and Peter Larkins. Optical Emission Lines of the Elements. Wiley, 2000.

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32

G, I͡U︡delevich I., Institut neorganicheskoĭ khimii (Akademii͡a︡ nauk SSSR), and Nauchnyĭ sovet SO AN SSSR po analiticheskoĭ khimii., eds. Novye metody analiza vysokochistykh i tekhnicheskikh materialov: Sbornik nauchnykh trudov. Novosibirsk: In-t neorganicheskoĭ khimii SO AN SSSR, 1990.

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33

Lamberti, Carlo, and Jeroen A. van Bokhoven. X-Ray Absorption and X-Ray Emission Spectroscopy: Theory and Applications. Wiley & Sons, Incorporated, John, 2016.

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34

Lamberti, Carlo, and Jeroen A. van Bokhoven. X-Ray Absorption and X-Ray Emission Spectroscopy: Theory and Applications. Wiley & Sons, Incorporated, John, 2016.

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35

F, Jones B., and United States. National Aeronautics and Space Administration., eds. Optical spectroscopy of IRAS sources with the infrared emission bands. [Washington, DC: National Aeronautics and Space Administration, 1987.

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36

Differential Optical Absorption Spectroscopy: Principles and Applications (Physics of Earth and Space Environments). Springer, 2008.

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37

Optical Absorption of Impurities and Defects in Semiconducting Crystals Springer Series in SolidState Sciences. Springer-Verlag Berlin and Heidelberg GmbH &, 2012.

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38

Centre, Bhabha Atomic Research, ed. Optical design of an X-ray absorption spectroscopy beamline at Indus-2 synchrotron radiation source. Mumbai, India: Bhabha Atomic Research Centre, 1999.

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39

J, Drapela Timothy, and National Institute of Standards and Technology (U.S.), eds. The NIST-traceable Referene-Material program for wavelength- reference absorption cells. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2003.

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40

J, Drapela Timothy, and National Institute of Standards and Technology (U.S.), eds. The NIST-traceable Referene-Material program for wavelength- reference absorption cells. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2003.

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41

L, Fearey Bryan, and Society of Photo-optical Instrumentation Engineers., eds. Optical methods for ultrasensitive detection and analysis: Techniques and applications : 21-23 January 1991, Los Angeles, California. Bellingham, Wash., USA: SPIE, 1991.

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42

Beth, Opila, and NASA Glenn Research Center, eds. Investigation into spectroscopic techniques for thermal barrier coating spall detection. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 2001.

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43

Jackson, Caroline M. The importance of rare earth elements in the analysis of Saxon glass by inductively coupled plasma optical emission spectroscopy. Bradford, 1987.

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44

High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2014.

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45

Sa, Jacinto. High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2017.

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46

Metcalf, Myers Roger, and Lewis Research Center, eds. Nonequilibrium in a low power arcjet nozzle. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1991.

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47

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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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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48

Chance, Kelly, and Randall V. Martin. Radiative Transfer. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199662104.003.0004.

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Radiative transfer is the process of energy transfer during the propagation of electromagnetic radiation through a medium. The processes of extinction, due to absorption and scattering, and thermal emission are described. It is shown how they can be represented by wavelength-dependent optical thickness, due to absorption or emission cross sections and the number of absorbers, emitters, or scatterers. Cloud optical thickness and conservative scattering are described. The scattering phase function is introduced. Next, the general form of radiative transfer is given, and its applicability to the details of planetary atmospheric radiation shown.
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49

Chance, Kelly, and Randall V. Martin. Radiation and Climate. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199662104.003.0008.

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Global climate is controlled by an energy balance between incoming solar radiation and outgoing terrestrial radiation. An energy balance is first developed using a simple one-layer model of the atmosphere and then made more realistic by distributing the atmospheric optical depth smoothly in a Gray Atmosphere Model. Wavelength-specific and altitude-dependent absorption and emission for the ultraviolet through long-wave infrared are described. Knowledge is combined into an overall Earth energy budget. The sensitivity of the climate to radiative forcing is examined.
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