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1

Kühn, Johann H., ed. Radiative Corrections for e+e- Collisions. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989. http://dx.doi.org/10.1007/978-3-642-74925-4.

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2

Ralchenko, Yuri, ed. Modern Methods in Collisional-Radiative Modeling of Plasmas. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-27514-7.

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3

Collision-induced absorption in gases. Cambridge [England]: Cambridge University Press, 1993.

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4

Sobel'man, I. I. Radiative and collisional characteristics of ions in hot plasmas. Commack, N.Y: Nova Science, 1993.

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5

Kumakhov, M. A. Atomic collisions in crystals. New York: Gordon and Breach Science Publishers, 1989.

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6

Hobbs, Jacqueline Elizabeth. The use of radiation-enhanced diffusion to study collision cascades in solids. Salford: Universityof Salford, 1985.

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7

Stefanovich, Remizovich Valeriĭ, and Ri͡a︡zanov Mikhail Ivanovich, eds. Collisions of fast charged particles in solids. New York: Gordon and Breach, 1985.

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8

Beyer, H. F. X-ray radiation of highly charged ions. Berlin: Springer, 1997.

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9

Colloque Collisions et rayonnement (4th 1985 Orléans, France). Colloque Collisions et rayonnement: 18-20 septembre 1985, Orléans, France. Les Ulis, France: Editions du physique, 1986.

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10

Máximo, García-Sucre, Raseev Gheorghe, and Ross Stephen C, eds. Half collision resonance phenomena in molecules: Proceedings of the Escuela Latinoamericana de Física, Caracas, Venezuela, 1990. New York: American Institute of Physics, 1991.

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11

Kühn, Johann H. Radiative Corrections for e+e- Collisions: Proceedings of the International Workshop Held at Schloß Ringberg Tegernsee, FRG, April 3-7, 1989. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989.

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12

Eckstein, Wolfgang. Computer simulation of ion-solid interactions. Berlin: Springer-Verlag, 1991.

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13

Lisitsa, V. S. Atoms in plasmas. Berlin: Springer-Verlag, 1994.

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14

Eckstein, Wolfgang. Computer Simulation of Ion-Solid Interactions. Berlin, Heidelberg: Springer Berlin Heidelberg, 1991.

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15

Collision processes and excitation of UV emission from planetary atmospheric gases: A handbook of cross sections. Australia: Gordon and Breach Science Publishers, 1998.

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16

Tripathi, Ratikanta. Universal parameterization of absorption cross sections. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1997.

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17

Yugoslav Summer School and International Symposium on Physics of Ionized Gases. (14th 1988 Sarajevo, Bosnia and Hercegovina). The physics of ionized gases: SPIG '88. Commack, NY: Nova Science Publishers, 1989.

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18

Bethe, Hans Albrecht. Intermediate quantum mechanics. 3rd ed. Menlo Park, Calif: Benjamin/Cummings Pub. Co., 1986.

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19

Bethe, Hans Albrecht. Intermediate quantum mechanics. 3rd ed. Reading, Mass: Addison-Wesley, 1997.

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20

Ljupčo, Hadžievski, Grozdanov T, and Bibić Nataša, eds. The physics of ionized gases: 22nd Summer School and International Symposium on the Physics of Ionized Gases : invited lectures, topical invited lectures and progress reports, National Park Tara, Bajina Bašta, Serbia and Montenegro, 23-27 August 2004. Melville, N.Y: American Institute of Physics, 2004.

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21

Tripathi, Ratikanta. Universal parameterization of absorption cross sections: Light systems. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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22

Symposium on Atomic and Surface Physics (1988 La Plagne, France). SASP, Symposium on Atomic and Surface Physics, '88: Contributions : La Plagne, France, January 17-23. Edited by Pesnelle A. Cédex, France: Service de physique des atomes et des surfaces, CEN Saclay, 1988.

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23

Yugoslav, Summer School and International Symposium on Physics of Ionized Gases (12th 1984 Šibenik Croatia). The physics of ionized gases. Singapore: World Scientific, 1985.

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24

Summer School and International Symposium on the Physics of Ionized Gases (17th 1994 Belgrade, Serbia). 17th SPIG: 17th Summer School and International Symposium on the Physics of Ionized Gases, August 29th-September 1st, 1994, Belgrade, Yugoslavia : contributed papers & abstracts of invited lectures and progress reports. Edited by Marinković B and Petrović Z. Belgrade, Yugoslavia: Institute of Physics, 1994.

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25

M, Popović M., Krstić P, and Institute of Physics (Belgrade, Yugoslavia), eds. The physics of ionized gases: SPIG 84. Singapore ; Philadelphia, PA: World Scientific Pub. Co., 1985.

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26

J, Purić, Belić D, and Univerzitet u Beogradu. Dept. of Physics and Meteorology., eds. The physics of ionized gases: SPIG '86. Singapore: World Scientific, 1987.

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27

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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28

M, Howe L., AECL Research, Chalk River Laboratories. Reactor Materials Research Branch., Chalk River Laboratories. System Chemistry and Corrosion., and International Conference on Ion Beam Modification of Materials (8th : 1992 : Heidelberg, Germany), eds. Collision cascades in Zr3Fe. Chalk River, Ont: Reactor Materials Research Branch, Chalk River Laboratories, 1994.

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29

W, Norbury John, Tripathi Ratikanta, and Langley Research Center, eds. Radiative energy loss by galactic cosmic rays. Hampton, VA: National Aeronautics and Space Administration, Langley Research Center, 2002.

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30

Ralchenko, Yuri. Modern Methods in Collisional-Radiative Modeling of Plasmas. Springer, 2016.

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31

Ralchenko, Yuri. Modern Methods in Collisional-Radiative Modeling of Plasmas. Springer, 2018.

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32

1958-, Le Rudulier M., Vallée O, Tran Minh N, and Colloque Collisions et rayonnement (5th : 1987 : Orléans, France), eds. Collisions et rayonnement: Colloque. Les Ulis, France: Editions de physique, 1988.

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33

McParland, Brian J. Medical Radiation Dosimetry: Theory of Charged Particle Collision Energy Loss. Springer, 2016.

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34

1940-, Wilson John W., Norbury John W, and Langley Research Center, eds. Parameterizations of pion energy spectrum in nucleon-nucleon collisions. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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35

1940-, Wilson John W., Norbury John W, and Langley Research Center, eds. Parameterizations of pion energy spectrum in nucleon-nucleon collisions. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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36

Lebedev, Andrey N., V. I. Kurilko, and Vyacheslov A. Buts. The Theory of Coherent Radiation by Intense Electron Beams (Particle Acceleration and Detection). Springer, 2006.

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37

Chance, Kelly, and Randall V. Martin. Blackbody Radiation, Boltzmann Statistics, Temperature, and Thermodynamic Equilibrium. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199662104.003.0003.

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Blackbody radiation, temperature, and thermodynamic equilibrium give a tightly coupled description of systems (atmospheres, volumes, surfaces) that obey Boltzmann statistics. They provide descriptions of systems when Boltzmann statistics apply, either approximately or nearly exactly. These apply most of the time in the Earth’s stratosphere and troposphere, and in other planetary atmospheres as long as the density is sufficient that collisions among atmospheric molecules, rather than photochemical and photophysical properties, determine the energy populations of the ensemble of molecules. Thermodynamic equilibrium and the approximation of local thermodynamic equilibrium are introduced. Boltzmann statistics, blackbody radiation, and Planck’s law are described. The chapter introduces the Rayleigh-Jeans limit, description of noise sources as temperatures, Kirchoff’s law, the Stefan-Boltzmann constant, and Wien’s law.
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38

Scipione, Jane Frances. A theoretical investigation of the effects of ultrashort pulse laser radiation on atomic collision processes. 1985.

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39

Particle Penetration and Radiation Effects Volume 2: Penetration of Atomic and Molecular Ions. Springer, 2014.

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40

Sigmund, Peter. Particle Penetration and Radiation Effects Volume 2: Penetration of Atomic and Molecular Ions. Springer, 2016.

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41

1946-, Kühn J. H., ed. Radiative corrections for e+e- collisions: Proceedings of the international workshop held at Schloss Ringberg, Tegernsee, FRG, April 3-7, 1989. Berlin: Springer-Verlag, 1989.

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42

Kuhn, Jens H. Radiative Corrections for E+E- Collisions: Proceedings of the International Workshop Held at Schlob Ringberg Tegernsee, Frg, April 3-7, 1989. Springer, 1989.

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43

String fragmentation model in space radiation problems. Hampton, VA: National Aeronautics and Space Administration, Langley Research Center, 2002.

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44

Groeneveld, K. O., and W. Meckbach. Forward Electron Ejection in Ion Collisions: Proceedings (Lecture Notes in Physics). Springer-Verlag, 1985.

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45

Colloque Collisions et rayonnement: 18-20 septembre 1985, Orleans, France (Annales de physique). Editions du physique, 1986.

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46

L, Orbeli A., Nauchnyĭ sovet po probleme "Fizika ėlektronnykh i atomnykh stolknoveniĭ" (Akademii͡a︡ nauk SSSR), Fiziko-tekhnicheskiĭ institut im. A.I. Ioffe, Vsesoi͡u︡znai͡a︡ shkola po fizike ėlektronnykh i atomnykh stolknoveniĭ (6th : 1986 : Signakhi, Georgian S.S.R.), and Seminar po vzaimodeĭstvii͡u︡ ionnykh puchkov s atomami i poverkhnostʹi͡u︡ tverdogo tela (1986 : Novgorod, R.S.F.S.R.), eds. Fizika ėlektronnykh i atomnykh stolknoveniĭ: Sbornik nauchnykh trudov. Leningrad: FTI, 1987.

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47

G, Rojas R., Burnside Walter Dennis 1942-, and United States. National Aeronautics and Space Administration., eds. Modelling and performance analysis of four and eight element TCAS. Columbus, Ohio: Ohio State University, Electroscience Laboratory, 1990.

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48

Kuhn, Johann. Radiative Corrections for e+e- Collisions: Proceedings of the International Workshop Held at Schloß Ringberg Tegernsee, FRG, April 3-7, 1989. Springer, 2014.

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49

Lebedev, Andrey N., V. I. Kurilko, and Vyacheslov A. Buts. The Theory of Coherent Radiation by Intense Electron Beams. Springer, 2010.

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50

Henriksen, Niels Engholm, and Flemming Yssing Hansen. Unimolecular Reactions. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198805014.003.0007.

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This chapter considers unimolecular reactions; photo-induced reactions, that is, true unimolecular reactions; and reactions initiated by collisional activation, that is, apparent unimolecular reactions where it is assumed that the time scales for activation and subsequent reaction are well separated. Elements of classical and quantum dynamical descriptions are discussed, including Slater theory and the quantum mechanical description of photo-induced reactions. Statistical theories aiming at the calculation of micro-canonical as well as canonical rate constants are discussed, including a detailed discussion of RRKM theory. It concludes with a discussion of femtochemistry, that is, the observation and control of chemical dynamics using femtosecond pulses of electromagnetic radiation, focusing on the control of unimolecular reactions via the interaction with coherent light; that is, laser control.
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