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1

Weinberg, Irving. Effects of electron and proton irradiations on n/p and p/n GaAs cells grown by MOCVD. National Aeronautics and Space Administration, 1987.

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2

P, Bauer Cletus. Electron irradiation n type cadmium telluride. Naval Postgraduate School, 1985.

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3

Motta, A. T. Amorphization kinetics of Zr3Fe under electron irradiation. Chalk River Laboratories, 1994.

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4

Gold, Don William. High energy electron radiation degradation of gallium arsenide solar cells. Naval Postgraduate School, 1986.

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5

Rojas, Isabela Medina. Air pollution control of trace contaminants using electron beam irradiation. National Library of Canada, 1999.

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6

Lith, Dick van. Electron migration in hydrated biopolymers following pulsed irradiation at low temperatures. Drucker:] Avo, 1987.

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7

executive, Health and safety. Safety in the design and use of gamma and electron irradiation facilities. HSE Books, 1993.

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8

Great Britain. Health and Safety Executive., ed. Safety in the design and use of gamma and electron irradiation facilities. 2nd ed. HSE Books, 1998.

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9

Connors, Sean Mark. Effects of high energy electron irradiation on a YBaCu0- high temperature superconductor. Naval Postgraduate School, 1991.

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10

M, Griffiths, Atomic Energy of Canada Limited., and Chalk River Laboratories, eds. Study of point defect mobilities in zirconium during electron irradiation in a HVEM. Chalk River Laboratories, 1993.

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11

Morrison, Rosanna Mentzer. An economic analysis of electron accelerators and cobalt-60 for irradiating food. U.S. Dept. of Agriculture, Economic Research Service, 1989.

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12

Morrison, Rosanna Mentzer. An economic analysis of electron accelerators and cobalt-60 for irradiating food. U.S. Dept. of Agriculture, Economic Research Service, 1989.

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13

Morrison, Rosanna Mentzer. An economic analysis of electron accelerators and cobalt-60 for irradiating food. U.S. Dept. of Agriculture, Economic Research Service, 1989.

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14

Jet Propulsion Laboratory (U.S.), ed. Characterization of production GaAs solar cells for space. National Aeronautics and Space Administration, Jet Propulsion Laboratory, California Institute of Technology, 1988.

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15

Morral, Dennis G. Electron irradiation of p-type Mercury Cadmium Telluride. 1985.

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16

Foley, James Kevin. 30 MeV electron beam irradiation effects on GaAs1-xPxLEDS. 1985.

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17

Wang, Sigen, Otto Zhou, and Sha Chang. Carbon-nanotube field emission electron and X-ray technology for medical research and clinical applications. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.19.

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This article describes carbon-nanotube based X-ray technologies for medical research and clinical applications, including an X-ray source, microfocus X-ray tube, microcomputed tomography scanner, stationary digital breast tomosynthesis, microradiotherapy system, and single-cell irradiation system. It first examines electron field emission from carbon nanotubes before discussing carbon-nanotube field emission electron and X-ray technologies in greater detail. It highlights the enormous promise of these systems in commercial and research application for the future in diagnostic medical imaging;
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18

IAEA. Radiation Safety of Gamma, Electron and X Ray Irradiation Facilities. International Atomic Energy Agency, 2010.

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19

Radiation Safety of Gamma and Electron Irradiation Facilities (Safety Series). International Atomic Energy Agency, 1992.

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20

executive, Health and safety. Safety and Design and Use of Gamma and Electron Irradiation Facilities. Health and Safety Executive (HSE), 1998.

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21

Stella, Lorenzo. Guidebook to Real Time Electron Dynamics: Irradiation Dynamics from Molecules to Nanoclusters. Taylor & Francis Group, 2024.

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22

Kohanoff, Jorge José, and Lorenzo Stella. Guidebook to Real Time Electron Dynamics: Irradiation Dynamics from Molecules to Nanoclusters. CRC Press LLC, 2024.

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23

Kohanoff, Jorge José, and Lorenzo Stella. Guidebook to Real Time Electron Dynamics: Irradiation Dynamics from Molecules to Nanoclusters. CRC Press LLC, 2024.

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24

Calvo, Felipe A., Leonard L. Gunderson, Christopher G. Willett, and Louis B. Harrison. Intraoperative Irradiation: Techniques and Results. Humana Press, 2011.

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25

Calvo, Felipe A., Leonard L. Gunderson, Christopher G. Willett, and Louis B. Harrison. Intraoperative Irradiation: Techniques and Results. Humana Press, 1999.

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26

Calvo, Felipe A., Leonard L. Gunderson, Christopher G. Willett, and Louis B. Harrison. Intraoperative Irradiation: Techniques and Results. Humana Press, 2016.

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27

IAEA. Radiation Safety of Gamma, Electron and X Ray Irradiation Facilities: Specific Safety Guide. International Atomic Energy Agency, 2015.

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28

Electron Paramagnetic Resonance Spectroscopy and Hall Effect Studies of the Effects of Low Energy Electron Irradiation on Gallium Nitride. Storming Media, 2003.

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29

Footner, P. K., and D. J. Laver. Evaluation of the Relative Stability of Scanning Electron Microscope Calibration Spheres in Vacuum, and During Irradiation with an Electron Beam. European Communities / Union (EUR-OP/OOPEC/OPOCE), 1991.

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30

Pornaras, Robert A. Electron irradiation of n channel silicon on sapphire Insulated Gate Field Effect Transistors (IGFET). 1985.

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31

executive, Health and safety. Safety in the Design and Use of Gamma and Electron Irradiation Facilities (HS(G)). Health and Safety Executive (HSE), 1993.

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32

Development of Electron Beam and X Ray Applications for Food Irradiation: IAEA TECDOC No. 2008. International Atomic Energy Agency, 2022.

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33

Gunderson, Leonard L. Intraoperative Irradiation: Techniques & Results (Current Clinical Oncology). Humana Press, 1999.

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34

Cassidy, Jim, Donald Bissett, Roy A. J. Spence OBE, Miranda Payne, and Gareth Morris-Stiff. Principles of chemotherapy. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199689842.003.0005.

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Principles of radiation oncology outlines the physical and biological effects of ionising radiation, and its use in clinical oncology. Radiobiology, examining the response of tissue to ionising radiation, is described with regards to normal and malignant tissues. The effect of fractionation, the delivery of radiotherapy in a series of repeated exposures, is examined. The damaging effects on normal tissues are considered, particularly nonreversible late effects including carcinogenesis. Therapeutic exposure to ionising radiation is contrasted between radical and palliative radiotherapy. The phy
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35

Radiation sterilization for health care products: X-ray, gamma, and electron beam. CRC Press, 2002.

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36

Hong, M. H. Laser applications in nanotechnology. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.24.

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This article discusses a variety of laser applications in nanotechnology. The laser has proven to be one of many mature and reliable manufacturing tools, with applications in modern industries, from surface cleaning to thin-film deposition. Laser nanoengineering has several advantages over electron-beam and focused ion beam processing. For example, it is a low-cost, high-speed process in air, vacuum or chemical environments and also has the capability to fulfill flexible integration control. This article considers laser nanotechnology in the following areas: pulsed laser ablation for nanomater
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37

ORTIZ-RODRIGUEZ, Lilia, Fabiola SANDOVAL-SALAS, Gemma MORALES-OLÁN, and Cynthia Cristina ARCILA-LOZANO. Handbook Tecnologías Emergentes Aplicadas en Alimentos. ECORFAN, 2022. http://dx.doi.org/10.35429/h.2022.1.1.83.

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Nowadays, emerging technologies for food are the most studied, compared to the traditional food preservation. In this book some of the emerging technologies applied in the food industry are revised, such as irradiation that allows to improve food safety and shelf life; the advantages and some limitations of technology are presented, as well as the effects on the food properties and the applicable legislation for human consumption. A comparison of the emerging technologies combined with high hydrostatic pressure treatment is conducted. On the other hand, active packaging technology is described
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38

Goldstein, Myrna Chandler, and Mark A. Goldstein. Food and Nutrition Controversies Today. Greenwood Publishing Group, Inc., 2009. http://dx.doi.org/10.5040/9798400652288.

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Is any food safe? Will mad cow disease kill us all? How many calories are really in your restaurant Caesar salad? Modern consumers are besieged with conflicting messages about food and nutrition, making it difficult for the lay person to know what to believe. This no-nonsense resource explores the latest controversies in the field of food and nutrition, presenting readers with the varying opinions and underlying facts that fuel these debates. Fifteen chapters focus on hot topics like organic food, bottled water, and deadly bacterial outbreaks as well as lesser known issues such as food irradia
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39

Bradford, University of, ed. Structure and properties of crosslinked polymers and copolymers of ethylene: A comparative study of the structure-property relationships of foamed and unfoamed polyethylenes and ethylene-vinyl acetate copolymers, crosslinked by electron irradiation and by peroxides. 1988.

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40

McDermott, Patrick N., and Colin G. Orton. The Physics & Technology of Radiation Therapy. Medical Physics Publishing, 2018. http://dx.doi.org/10.54947/9781930524989.

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It's no wonder more and more colleges are adopting The Physics & Technology of Radiation Therapyfor their radiology and medical physics programs. Radiation therapy is a difficult subject to understand and teach, so it helps to have a book written by two renowned experts who have explained the field's tough concepts to students for many years with the perfect mix of depth, insight, and humor. The critics agree. From Thomas Lowinger in IOMP Journal..." This is an excellent book; the presentation of the book diagrams, figures, pictures (many in color), and selection of problems are clear and
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