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1

Sobelʹman, I. I. Excitation of atoms and broadening of spectral lines. 2nd ed. Springer, 1995.

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2

H, Tipping R., and United States. National Aeronautics and Space Administration., eds. An improved quasistatic line-shape theory: The effect of molecular motion on the line wings. National Aeronautics and Space Administration, 1994.

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3

(Hans), Kleinpoppen H., ed. Analysis of excitation and ionization of atoms and molecules by electron impact. Springer, 2010.

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4

Dalla Piazza, Bastien. Excitation Spectra of Square Lattice Antiferromagnets. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-26419-6.

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5

Sobel’man, Igor I., Leonid A. Vainshtein, and Evgenii A. Yukov. Excitation of Atoms and Broadening of Spectral Lines. Springer Berlin Heidelberg, 1995. http://dx.doi.org/10.1007/978-3-642-57825-0.

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6

Sobel'man, I. I. Excitation of atoms and broadening of spectral lines. 2nd ed. Springer, 1995.

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7

Baldassare, Di Bartolo, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Research Study Institute and International School of Atomic and Molecular Spectroscopy Workshop on Spectroscopy and Dynamics of Collective Excitation in Solids (1995 : Erice, Italy), eds. Spectroscopy and dynamics of collective excitations in solids. Plenum Press, 1997.

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8

Goldenbaum, Frank. The physics of spallation processes: Theory, experiments, and applications. Forschungszentrum Jülich, Zentralbibliothek, 2004.

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9

T, Taylor K., Nayfeh Munir H, Clark C. W. 1952-, and International Conference on the Physics of Electronic and Atomic Collisions (15th : 1987 : Brighton, England), eds. Atomic spectra and collisions in external fields. Plenum Press, 1988.

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10

J, Xie, Baqer S, U.S. Nuclear Regulatory Commission. Office of Nuclear Regulatory Research. Division of Engineering Technology., and St. Louis University. Dept. of Earth and Atmospheric Sciences., eds. Lg excitation, attenuation, and source spectral scaling in central and eastern North America. Division of Engineering Technology, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1997.

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11

Walsh, Brian M. Spectroscopy and excitation dynamics of the trivalent lanthanides Tm²⁺ and Ho³⁺ in LiYF₄. National Aeronautics and Space Administration, Langley Research Center, 1995.

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12

Susła, Bronisław. Zastosowanie spektroskopii tunelowej do badania przejść elektronowych i emisji światła w złączach metal-izolator-metal. Wydawn. Politechniki Poznańskiej, 1993.

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13

Isotope low-dimensional structures: Elementary excitations and applications. Springer, 2012.

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14

Barnes, Ted, and Hans-Peter Morsch. Baryon excitations: Lectures of the COSY workshop held at the Forschungszentrum Jülich from 2 to 3 May 2000. Forschungszentrum Jülich, Central Library, 2000.

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15

H, Nayfeh Munir, and Clark C. W. 1952-, eds. Atomic excitation and recombination in external fields: Proceedings of the Workshop on Atomic Spectra and collisions in External Fields, National Bureau of Standards, Gaithersburg, Maryland, 22-23 October 1984. Gordon and Breach Science Publishers, 1985.

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16

Suryanarayana, M. V. Experimental and theoretical investigations on isotope selective excitation in multi-step laser photoionisation schemes: A spectral simulation approach. Bhabha Atomic Research Centre, 2001.

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17

X, He Z., Samson James A. R, and United States. National Aeronautics and Space Administration., eds. A photoionization study of OH and OD from 680⁰A to 950⁰A: An analysis of the Rydberg series. National Aeronautics and Space Administration, 1995.

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18

Taniguchi Symposium (19th 1996 Kashikojima, Japan). Relaxations of excited states andphoto-induced phase transitions: Proceedings of the 19th Taniguchi Symposium, Kashikojima, Japan, July 18-23, 1996. Springer, 1997.

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19

Adamovsky, Grigory. Detection, evaluation, and optimization of optical signals generated by fiber optic bragg gratings under dynamic excitations. National Aeronautics and Space Administration, Glenn Research Center, 2002.

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20

Adamovsky, Grigory. Detection, evaluation, and optimization of optical signals generated by fiber optic bragg gratings under dynamic excitations. National Aeronautics and Space Administration, Glenn Research Center, 2002.

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21

Excitation of Atomic Spectra. Alpha Science International, Ltd, 2006.

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22

Sobelman, Igor I., and L. A. Vainshtein. Excitation of Atoms and Broadening of Spectral Lines. Brand: Springer, 2012.

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23

Conti, Sergio. Ground State Properties and Excitation Spectrum of Correlated Electron Systems. Birkhauser Boston, 2007.

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24

Ciferno, Thomas M. Electron excitation temperature and density measurements in a thermionically assisted cesium-argon discharge. 1992.

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25

Abedin, Md Nurul. Fluorescence excitation spectrum of the HeI2 complex in the supersonic jet. 1985.

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26

Kleinpoppen, Hans, and Afzal Chaudhry. Analysis of Excitation and Ionization of Atoms and Molecules by Electron Impact. Springer, 2010.

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27

Magers, David Huey. The N3H3 molecular system and a coupled-cluster effective Hamiltonian for electronic spectra. 1988.

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28

Kleinpoppen, Hans, and Afzal Chaudhry. Analysis of Excitation and Ionization of Atoms and Molecules by Electron Impact. Springer London, Limited, 2010.

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29

Kleinpoppen, Hans, and Afzal Chaudhry. Analysis of Excitation and Ionization of Atoms and Molecules by Electron Impact. Springer, 2012.

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30

Svehla, G. Ultraviolet Photoelectron and Photoion Spectroscopy, Auger Electron Spectroscopy, Plasma Excitation in Spectrochemical Analysis. Elsevier Science & Technology Books, 2012.

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31

Vainshtein, Leonid A., Igor I. Sobel'man, and Evgenii A. Yukov. Excitation of Atoms and Broadening of Spectral Lines (Springer Series on Atomic, Optical, and Plasma Physics). 2nd ed. Springer, 2002.

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32

Tiwari, Sandip. Electromechanics and its devices. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0005.

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Electromechanics—coupling of mechanical forces with others—exhibits a continuum-to-discrete spectrum of properties. In this chapter, classical and newer analysis techniques are developed for devices ranging from inertial sensors to scanning probes to quantify limits and sensitivities. Mechanical response, energy storage, transduction and dynamic characteristics of various devices are analyzed. The Lagrangian approach is developed for multidomain analysis and to bring out nonlinearity. The approach is extended to nanoscale fluidic systems where nonlinearities, fluctuation effects and the classi
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33

Glazov, M. M. Strong Coupling of Electron and Nuclear Spins: Outlook and Prospects. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198807308.003.0011.

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In this chapter, some prospects in the field of electron and nuclear spin dynamics are outlined. Particular emphasis is put ona situation where the hyperfine interaction is so strong that it leads to a qualitative rearrangement of the energy spectrum resulting in the coherent excitation transfer between the electron and nucleus. The strong coupling between the spin of the charge carrier and of the nucleus is realized, for example in the case of deep impurity centers in semiconductors or in isotopically purified systems. We also discuss the effect of the nuclear spin polaron, that is ordered st
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34

Vainshtein, Leonid A., Igor I. Sobel'man, and Evgenii A. Yukov. Excitation of Atoms and Broadening of Spectral Lines. Springer London, Limited, 2012.

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35

Glazov, M. M. Electron Spin Relaxation Beyond the Hyperfine Interaction. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198807308.003.0008.

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Here, some prospects for future studies in the field of electron and nuclear spin dynamics are outlined. In contrast to previous chapters where the electron interaction with multitude of nuclei was discussed, in Chapter 8 particular emphasis is put on a situation where hyperfine interaction is so strong that it leads to a qualitative rear rangement of the energy spectrum resulting in coherent excitation transfer between electron and nucleus. The strong coupling between the spin of the charge carrier and of the nucleus is realized; e.g., in the case of deep impurity centers in semiconductors or
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36

Morawetz, Klaus. Spectral Properties. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797241.003.0008.

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The spectral properties of the nonequilibrium Green’s functions are explored. Causality and sum rules are shown to be completed by the extended quasiparticle picture. The off-shell motion is seen to become visible in satellite structures of the spectral function. Different forms of ansatz to reduce the two-time Green’s function to a one-time reduced density matrix are discussed with respect to the consistency to other approximations. We have seen from the information contained in the correlation function that the statistical weight of excitations with which the distributions are populated are
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37

Ji, De. De-excitation electron spectroscopy of core-excited methyl formate. 1992.

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38

Ji, De. De-excitation electron spectroscopy of core-excited methyl formate. 1992.

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39

Spectral Theory and Excitation of Open Structures (Ieee Electromagnetic Waves Series). Institution of Electrical Engineers, 1996.

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40

Piazza, Bastien Dalla. Excitation Spectra of Square Lattice Antiferromagnets: Theoretical Explanation of Experimental Observations. Springer London, Limited, 2016.

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41

Piazza, Bastien Dalla. Excitation Spectra of Square Lattice Antiferromagnets: Theoretical Explanation of Experimental Observations. Springer, 2018.

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42

Piazza, Bastien Dalla. Excitation Spectra of Square Lattice Antiferromagnets: Theoretical Explanation of Experimental Observations. Springer, 2016.

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43

Jensen, Elke. Non-adiabaticity in the photodissociation of CH₃SH. 1993.

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44

Sobstvennai͡a︡ li͡u︡minest͡s︡ent͡s︡ii͡a︡ kristallov i stekol. Akademii͡a︡ nauk Ėstonskoĭ SSR, 1989.

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45

Robin, Melvin B. Higher Excited States of Polyatomic Molecules. Academic Press Inc.,U.S., 1985.

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46

Robin, Melvin B. Higher Excited States of Polyatomic Molecules. Academic Press Inc.,U.S., 1985.

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47

Kavokin, Alexey V., Jeremy J. Baumberg, Guillaume Malpuech, and Fabrice P. Laussy. Semiclassical description of light–matter coupling. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198782995.003.0004.

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In this chapter we consider light coupling to elementary semiconductor crystal excitations—excitons—and discuss the optical properties of mixed light–matter quasiparticles named exciton-polaritons, which play a decisive role in optical spectra of microcavities. Our considerations are based on the classical Maxwell equations coupled to the material relation accounting for the quantum properties of excitons.
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48

Fromme, Bärbel. D-D Excitations in Transition-Metal Oxides: A Spin-Polarized Electron Energy-Loss Spectroscopy Study. Springer, 2007.

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49

d-d Excitations in Transition-Metal Oxides: A Spin-Polarized Electron Energy-Loss Spectroscopy (SPEELS) Study (Springer Tracts in Modern Physics). Springer, 2001.

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