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1

C, Hill S., ed. Light scattering by particles: Computational methods. World Scientific, 1990.

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2

Yanbian International Workshop on Modern Physics. (1st 1990 Yanbian University, Yanji, Jilin, China). Particles quantum groups, high T r, phase transitions and all that: Proceedings of the first Yanbian International Workshop on Modern Physics : 15-18 July, 1990, Yanbian University, Yanji, Jilin, China. Edited by Kang Kyungsik and Kim Chung-Wook. World Scientific, 1991.

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3

Autenrieth, Tanja. Heterosemie und Grammatikalisierung bei Modalpartikeln: Eine synchrone und diacrhone Studie anhand von "eben", "halt", "e(cher)t", "einfach", "schlicht" und "glatt". M. Niemeyer, 2002.

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4

ʻAbd al-Raḥmān al-Arīḥāwī al-Ḥalabī ʻĀrī. Munyat al-rāghib wa-bughyat al-ṭālib lil-Shaykh ʻAbd al-Raḥmān al-Arīḥāwī al-Ḥalabī (t 1128 H) al-shahīr bi-al-ʻĀrī. Dār al-Nābighah lil-Nashr wa-al-Tawzīʻ, 2020.

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5

Domonkos, Matthew T. A particle and energy balance model of the orificed hollow cathode / Matthew T. Domonkos ; prepared for the 38th Joint Propulsion Conference and Exhibit, cosponsored by the AIAA, ASME, SAE, and ASEE, Indianapolis, Indiana, July 7-10, 2002. National Aeronautics and Space Administration, Glenn Research Center, 2002.

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6

Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2020. http://dx.doi.org/10.1016/c2018-0-02999-0.

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7

Yang, Ping, Michael Kahnert, Bingqiang Sun, Lei Bi, and George Kattawar. Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2019.

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8

Yang, Ping, Michael Kahnert, Bingqiang Sun, Lei Bi, and George Kattawar. Invariant Imbedding T-Matrix Method for Light Scattering by Nonspherical and Inhomogeneous Particles. Elsevier, 2019.

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9

Storni, Tazio. Induction of T cell responses with virus-like particles: Combining adaptive and innate immunity for optimal efficacy. 2003.

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10

Zabrodin, Anton. Quantum spin chains and classical integrable systems. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797319.003.0013.

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This chapter is a review of the recently established quantum-classical correspondence for integrable systems based on the construction of the master T-operator. For integrable inhomogeneous quantum spin chains with gl(N)-invariant R-matrices in finite-dimensional representations, the master T-operator is a sort of generating function for the family of commuting quantum transfer matrices depending on an infinite number of parameters. Any eigenvalue of the master T-operator is the tau-function of the classical modified KP hierarchy. It is a polynomial in the spectral parameter which is identifie
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11

Horing, Norman J. Morgenstern. Equations of Motion with Particle–Particle Interactions and Approximations. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0008.

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Starting with the equation of motion for the field operator ψ(x,t) of an interacting many-particle system, the n-particle Green’s function (Gn) equation of motion is developed, with interparticle interactions generating an infinite chain of equations coupling it to (n+1)- and (n−1)-particle Green’s functions (Gn+1 and Gn−1, respectively). Particularly important are the one-particle Green’s function equation with its coupling to the two-particle Green’s function and the two-particle Green’s function equation with its coupling to the three-particle Green’s function. To develop solutions, it is n
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12

Horing, Norman J. Morgenstern. Thermodynamic Green’s Functions and Spectral Structure. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0007.

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Multiparticle thermodynamic Green’s functions, defined in terms of grand canonical ensemble averages of time-ordered products of creation and annihilation operators, are interpreted as tracing the amplitude for time-developing correlated interacting particle motions taking place in the background of a thermal ensemble. Under equilibrium conditions, time-translational invariance permits the one-particle thermal Green’s function to be represented in terms of a single frequency, leading to a Lehmann spectral representation whose frequency poles describe the energy spectrum. This Green’s function
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13

Doicu, Adrian, Yuri A. Eremin, and Thomas Wriedt. Light Scattering by Systems of Particles (Springer Series in Optical Sciences). Springer, 2006.

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14

Third generation SUSY and t¯t +Z production: Searches using the ATLAS detector at the CERN Large Hadron Collider. Springer, 2014.

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15

McFayden, Josh. Third Generation SUSY and T¯t +Z Production: Searches Using the ATLAS Detector at the CERN Large Hadron Collider. Springer London, Limited, 2014.

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16

McFayden, Josh. Third generation SUSY and t¯t +Z production: Searches using the ATLAS detector at the CERN Large Hadron Collider. Springer, 2016.

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17

Morawetz, Klaus. Multiple Impurity Scattering. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797241.003.0005.

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Furnished with basic ideas about the scattering on a single impurity, the motion of a particle scattered by many randomly distributed impurities is approached. In spite of having a single particle only, this system already belongs to many-body physics as it combines randomising effects of high-angle collisions with mean-field effects due to low-angle collisions. The averaged wave function leads to the Dyson equation. Various approximations are systematically introduced and discussed ranging from Born, averaged T-matrix to coherent potential approximation. The effective medium and the effective
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18

(Editor), Q. Shafi, ed. 1991 Summer School in High Energy Physics and Cosmology: Trieste, Italy 17 June-9 August, 1991 (I C T P Series in Theoretical Physics). World Scientific Pub Co Inc, 1992.

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19

Horing, Norman J. Morgenstern. Retarded Green’s Functions. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0005.

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Chapter 5 introduces single-particle retarded Green’s functions, which provide the probability amplitude that a particle created at (x, t) is later annihilated at (x′,t′). Partial Green’s functions, which represent the time development of one (or a few) state(s) that may be understood as localized but are in interaction with a continuum of states, are discussed and applied to chemisorption. Introductions are also made to the Dyson integral equation, T-matrix and the Dirac delta-function potential, with the latter applied to random impurity scattering. The retarded Green’s function in the prese
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20

(Editor), E. Gava, A. Masiero (Editor), K. S. Narain (Editor), et al., eds. 1997 Summer School in High Energy Physics and Cosmology: Ictp, Trieste, Italy 2 June-4 July 1997 (I C T P Series in Theoretical Physics). World Scientific Publishing Company, 1998.

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21

Morawetz, Klaus. Approximations for the Selfenergy. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797241.003.0010.

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The systematic expansion of the selfenergy is presented with the help of the closure relation of chapter 7. Besides Hartree–Fock leading to meanfield kinetic equations, the random phase approximation (RPA) is shown to result into the Lennard–Balescu kinetic equation, and the ladder approximation into the Beth–Uehling–Uhlenbeck kinetic equation. The deficiencies of the ladder approximation are explored compared to the exact T-matrix by missing maximally crossed diagrams. The T-matrix provides the Bethe–Salpeter equation for the two-particle correlation functions. Vertex corrections to the RPA a
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22

(Editor), E. Gava, A. Masiero (Editor), K. S. Narain (Editor), S. Randjbar-Daemi (Editor), and Q. Shafi (Editor), eds. 1995 Summer School in High Energy Physics and Cosmology: Ictp, Trieste, Italy 12 June-28 1995 (I C T P Series in Theoretical Physics). World Scientific Pub Co Inc, 1997.

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23

(Editor), E. Gava, A. Masiero (Editor), K. S. Narain (Editor), S. Randjbar-Daemi (Editor), and Q. Shafi (Editor), eds. 1996 Summer Scool in High Energy Physics and Cosmology: Ictp, Trieste, Italy, 10 June-26 July 1996 (I C T P Series in Theoretical Physics). World Scientific Pub Co Inc, 1997.

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24

Asher and -She in the Book of Ecclesiastes. American Oriental Society, 2017.

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25

Narain, K., S. Randjbar-Daemi, and E. Gava. 1992 Summer School in High Energy Physics and Cosmology: Trieste, Italy 15 June-31 July, 1992 (I C T P Series in Theoretical Physics). World Scientific Pub Co Inc, 1993.

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26

Zilles, Anne. Emission of Radio Waves in Particle Showers: Validation of Microscopic Simulations with the SLAC T-510 Experiment and their Potential in the Future Square Kilometre Array. Springer, 2018.

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27

Zilles, Anne. Emission of Radio Waves in Particle Showers: Validation of Microscopic Simulations with the SLAC T-510 Experiment and their Potential in the Future Square Kilometre Array. Springer, 2017.

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28

Horing, Norman J. Morgenstern. Superfluidity and Superconductivity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0013.

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Chapter 13 addresses Bose condensation in superfluids (and superconductors), which involves the field operator ψ‎ having a c-number component (<ψ(x,t)>≠0), challenging number conservation. The nonlinear Gross-Pitaevskii equation is derived for this condensate wave function<ψ>=ψ−ψ˜, facilitating identification of the coherence length and the core region of vortex motion. The noncondensate Green’s function G˜1(1,1′)=−i<(ψ˜(1)ψ˜+(1′))+> and the nonvanishing anomalous correlation function F˜∗(2,1′)=−i<(ψ˜+(2)ψ˜+(1′))+> describe the dynamics and elementary excitations of the
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