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1

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez, Hrsg. In-situ Studies with Photons, Neutrons and Electrons Scattering. Berlin, Heidelberg: Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-14794-4.

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2

In-situ studies with photons, neutrons and electrons scattering. Heidelberg: Springer, 2010.

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3

Smarandache, Florentin. Neutrosophic physics: More problems, more solutions, collection of papers. Hanko, Finland: North-European Scientific Publishers, 2010.

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4

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez, Hrsg. In-situ Studies with Photons, Neutrons and Electrons Scattering II. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-06145-0.

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5

R, Helliwell John, und Rentzepis Peter M. 1934-, Hrsg. Time-resolved diffraction. Oxford: Clarendon Press, 1997.

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6

Balcar, Ewald. Theory of magnetic neutron and photon scattering. Oxford: Clarendon Press, 1989.

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7

An introduction to the passage of energetic particles through matter. Boca Raton: Taylor & Francis, 2007.

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8

Balcar, E. Neutron-electron spectroscopy. Chilton: Rutherford Appleton Laboratory, 2000.

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9

A search for muon neutrino to electron neutrino oscillations in the MINOS experiment. New York: Springer, 2011.

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10

K, Mann Alfred, Hrsg. Neutrino interactions with electrons and protons: An account of an experimental program in particle physics in the 1980s. New York: American Institute of Physics, 1993.

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11

Mistry, Krishan V. J. Exploring Electron–Neutrino–Argon Interactions. Cham: Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-19572-3.

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12

Ochoa-Ricoux, Juan Pedro. A Search for Muon Neutrino to Electron Neutrino Oscillations in the MINOS Experiment. New York, NY: Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4419-7949-0.

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13

International Commission on Radiation Units and Measurements., Hrsg. Photon, electron, proton, and neutron interaction data for body tissues. Bethesda, Md., U.S.A: International Commission on Radiation Units and Measurements, 1992.

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14

Structural and chemical analysis of materials: X-ray, electron and neutron diffraction; X-ray, electron and ion spectrometry; electron microscopy. Chichester, West Sussex, England: Wiley, 1991.

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15

Local Structural Insights into Exotic Electronic States in 𝓭- and 𝑓-Electron Oxides with Joint Neutron and X-ray Pair Distribution Function Analysis. [New York, N.Y.?]: [publisher not identified], 2021.

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16

Andreani, C. Electron-volt spectrscopy at a pulsed neutron source using a resonance detector technique. Chilton: Rutherford Appleton Laboratory, 2002.

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17

Krivoglaz, Mikhail A. X-Ray and Neutron Diffraction in Nonideal Crystals. Berlin, Heidelberg: Springer Berlin Heidelberg, 1996.

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18

Rencontre, de Moriond (27th 1992 Les Arcs (Savoie France)). Progress in atomic physics, neutrinos and gravitation: Proceedings of the XXVIIth Rencontre de Moriond, Les Arcs, Savoie, France, January 25 - February 1, 1992. Gif-sur-Yvette, France: Editions Frontieres, 1992.

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19

Moriond, Workshop (9th 1989 Les Arcs Savoie France). Tests of fundamental laws in physics: Proceedings of the XXIVth Rencontre de Moriond, Les Arcs, Savoie, France, January 21-28, 1989. Gif-sur-Yvette, France: Editions Frontières, 1989.

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20

Pawlukojć, Andrzej. Badania widm oscylacyjnych, w obszarze niskich częstości, wybranych kompleksów molekularnych z przeniesieniem ładunku oraz ich składników metodą nieelastycznego rozpraszania neutronów termicznych. Warszawa: Instytut Chemii i Techniki Jądrowej, 2006.

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21

Genty, Victor. The MicroBooNE Search For Anomalous Electron Neutrino Appearance Using Image Based Data Reconstruction. [New York, N.Y.?]: [publisher not identified], 2019.

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22

Ann, MacDonald Carolyn, und Society of Photo-optical Instrumentation Engineers., Hrsg. EUV, X-ray, and neutron optics and sources: 21-23 July 1999, Denver, Colorado. Bellingham, Wash., USA: SPIE, 1999.

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23

Isaac Asimov. Understanding physics: 3 volumes in 1: Motion, sound, and heat; Light, magnetism, and electricity; The electron,proton, and neutron. New York: Barnes & Noble, 1993.

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24

Ryabov, Vladimir. Oil and Gas Chemistry. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1017513.

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The textbook provides up-to-date data on the composition and properties of hydrocarbons and other oil and gas compounds, on the physical and chemical methods and methods for separating and identifying oil components (molecular spectroscopy, mass spectrometry, NMR spectroscopy, electron paramagnetic resonance, atomic adsorption spectroscopy, neutron activation analysis). The chemistry and mechanism of thermal and catalytic transformations of oil components in the main processes of oil raw materials processing, as well as the problems of the origin of oil and the transformation of oil in the environment are considered. Meets the requirements of the federal state educational standards of higher education of the latest generation. It is intended for training in the course "Chemistry of oil and gas", for the preparation of bachelors, masters and certified specialists in the field of training "Oil and Gas business". It can be used for training in other areas in oil and gas universities and be of interest to specialists working in the field of chemistry and technology of oil refining and in other areas of the oil and gas industry.
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25

Gupta, Atam D. The electron-positron theory of the nucleus and the constructive role of black holes and of the neutrino and the antineutrino. [Georgia?]: A.D. Gupta, 1994.

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26

National Council on Radiation Protection and Measurements., Hrsg. Pulsed fast neutron analysis system used in security surveillance. Bethesda, Md: National Council on Radiation Protection and Measurements, 2003.

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27

Liu, Hanjie. Measurement of the Ratio of the Neutron to Proton Structure Functions, and the Three-Nucleon EMC Effect in Deep Inelastic Electron Scattering Off Tritium and Helium-3 Mirror Nuclei. [New York, N.Y.?]: [publisher not identified], 2020.

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28

Kanekawa, Nobuyasu. Dependability in electronic systems: Mitigation of hardware failures, soft errors, and electro-magnetic disturbances. New York: Springer, 2011.

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29

P, Schmelcher, Schweizer W und W.E. Heraeus Seminar (172nd : 1997 : Bad Honnef, Germany), Hrsg. Atoms and molecules in strong external fields. New York: Plenum Press, 1998.

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30

Kannengiesser, Thomas, Sudarsanam Suresh Babu und Yu-ichi Komizo. In-situ Studies with Photons, Neutrons and Electrons Scattering. Springer, 2011.

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31

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez. In-Situ Studies with Photons, Neutrons and Electrons Scattering. Springer, 2010.

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32

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez. In-situ Studies with Photons, Neutrons and Electrons Scattering. Springer, 2014.

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33

Stuewer, Roger H. Artificial Radioactivity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198827870.003.0011.

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Frédéric Joliot discovered artificial radioactivity on January 11, 1934, when he bombarded aluminum with polonium alpha particles and produced a radioactive isotope of phosphorus that decayed by emitting a positron. He detected it with a Geiger–Müller counter that Wolfgang Gentner had constructed for him. Two months later, Enrico Fermi, motivated in part by an insight of his first assistant, Gian Carlo Wick, decided to see if neutrons also could produce artificial radioactivity. The transformation of a neutron into a proton in a nucleus should create an electron, so to increase their number and hence the probability of creating an electron, he bombarded various elements with intense sources of neutrons, and on March 20, 1934, with aluminum he observed the created electrons and thereby discovered neutron-induced artificial radioactivity. Less than four months later, Marie Curie died on July 4, 1934, at age sixty-six.
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34

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez. In-situ Studies with Photons, Neutrons and Electrons Scattering II. Springer, 2016.

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35

In-situ Studies with Photons, Neutrons and Electrons Scattering II. Springer, 2014.

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36

Kannengiesser, Thomas, Sudarsanam Suresh Babu, Yu-ichi Komizo und Antonio J. Ramirez. In-Situ Studies with Photons, Neutrons and Electrons Scattering II. Springer, 2014.

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37

Mittemeijer, E. J., und U. Welzel. Modern Diffraction Methods. Wiley & Sons, Incorporated, John, 2013.

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38

Mittemeijer, E. J., und U. Welzel. Modern Diffraction Methods. Wiley & Sons, Limited, John, 2012.

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39

(Editor), J. R. Helliwell, und P. M. Rentzepis (Editor), Hrsg. Time-resolved Diffraction (Oxford Series on Synchroton Radiation, 2). Oxford University Press, USA, 1998.

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40

Mittemeijer, E. J., und U. Welzel. Modern Diffraction Methods. Wiley & Sons, Incorporated, John, 2013.

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41

Mittemeijer, E. J., und U. Welzel. Modern Diffraction Methods. Wiley & Sons, Incorporated, John, 2013.

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42

Mittemeijer, E. J., und U. Welzel. Modern Diffraction Methods. Wiley & Sons, Limited, John, 2013.

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43

publishing, protons. Universe Is Made of Protons, Neutrons, Electrons and Morons Funny Physics Science: A 6x9 Journal of the Universe Is Made of Protons, Neutrons, Electrons and Morons Funny Physics Science. Independently Published, 2021.

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44

media, green cloud. The Universe Is Made Of Protons, Neutrons, Electrons And Morons: Nice Notebook For Chemistry Students. Independently published, 2019.

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45

Carron, N. J. An Introduction to the Passage of Energetic Particles through Matter. Taylor & Francis, 2006.

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46

Krishnan, Kannan M. Principles of Materials Characterization and Metrology. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198830252.001.0001.

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Characterization enables a microscopic understanding of the fundamental properties of materials (Science) to predict their macroscopic behavior (Engineering). With this focus, the book presents a comprehensive discussion of the principles of materials characterization and metrology. Characterization techniques are introduced through elementary concepts of bonding, electronic structure of molecules and solids, and the arrangement of atoms in crystals. Then, the range of electrons, photons, ions, neutrons and scanning probes, used in characterization, including their generation and related beam-solid interactions that determine or limit their use, are presented. This is followed by ion-scattering methods, optics, optical diffraction, microscopy, and ellipsometry. Generalization of Fraunhofer diffraction to scattering by a three-dimensional arrangement of atoms in crystals, leads to X-ray, electron, and neutron diffraction methods, both from surfaces and the bulk. Discussion of transmission and analytical electron microscopy, including recent developments, is followed by chapters on scanning electron microscopy and scanning probe microscopies. It concludes with elaborate tables to provide a convenient and easily accessible way of summarizing the key points, features, and inter-relatedness of the different spectroscopy, diffraction, and imaging techniques presented throughout. The book uniquely combines a discussion of the physical principles and practical application of these characterization techniques to explain and illustrate the fundamental properties of a wide range of materials in a tool-based approach. Based on forty years of teaching and research, and including worked examples, test your knowledge questions, and exercises, the target readership of the book is wide, for it is expected to appeal to the teaching of undergraduate and graduate students, and to post-docs, in multiple disciplines of science, engineering, biology and art conservation, and to professionals in industry.
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47

Publishing, O. G. G. UNIVERSE IS MADE of PROTONS, NEUTRONS, ELECTRONS and MORONS : Funny Sarcastic Office Gag Gifts for Coworkers Birthday, Blank Lined Beautiful Wide Rule Pape : The UNIVERSE IS MADE of PROTONS, NEUTRONS, ELECTRONS and MORONS: Funny Sarcastic Office Gag Christ. Independently Published, 2019.

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48

Janssen, Alexander. Universe Is Made of Protons, Neutrons, Electrons and Morons: Lined Notebook Planner 120 Pages 6 X 9 Gift. Independently Published, 2021.

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49

Levin, Frank S. Macroscopic Manifestations of Quantum Mechanics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198808275.003.0013.

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Some possibly unexpected macroscopic manifestations of quantum mechanics are described in Chapter 12. The first is a laser, a device both man-made and one that relies on phase effects to achieve its potent beam. How this is done is illustrated by a diagram. The next is an estimate of the maximum height of a mountain, whose result was originally shown to rely on quantum mechanics. That result, approximately 30 km, is followed by showing that white dwarf and neutron stars are each gigantic manifestations of the Pauli Exclusion Principle, the first mainly consisting of carbon nuclei and electrons, the second mainly of neutrons. In each case, the primary constituent is a fermion, whose quantum behavior is governed by the Exclusion Principle. Along the way to showing this is a review of stellar evolution and energy sources. The final example is the first quantum machine, which is barely macroscopic.
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50

Stuewer, Roger H. Nuclear Physicists at the Crossroads. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198827870.003.0009.

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The Nazi Civil Service Law of April 7, 1933, prompted the establishment of refugee organizations to cope with the greatest intellectual migration in history, a difficult task in the Great Depression. It was in full swing in October when the seventh Solvay Conference was convened to address fundamental questions in nuclear physics. Foremost was the exact value of the mass of the neutron. Chadwick, Curie and Joliot, and Lawrence advanced very different values, and Lawrence soon had to admit that his very low value was mistaken. In January 1934, Fermi published his far-reaching theory of beta decay, which assumed that an electron and a neutrino are created when a neutron in the nucleus is transformed into a proton, which obviated the need to assume that electrons are present in nuclei. In August 1934, Chadwick and Goldhaber proved experimentally that the neutron is an unstable elementary particle.
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