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1

A, Kapli͡a︡nskĭi A., and Macfarlane R. M. 1938-, eds. Spectroscopy of solids containing rare earth ions. North-Holland, 1987.

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2

W, Street Kenneth, and NASA Glenn Research Center, eds. Solid phase luminescence of several rare earth ions on ion-exchange films. National Aeronautics and Space Administration, Glenn Research Center, 1999.

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3

W, Street Kenneth, and NASA Glenn Research Center, eds. Solid phase luminescence of several rare earth ions on ion-exchange films. National Aeronautics and Space Administration, Glenn Research Center, 1999.

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4

Klintenberg, Mattias. Rare-earth polarized absorption spectra as a structural tool. Acta Universitatis Upsaliensis, 1997.

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5

Lis, Stefan. Luminescencyjne badania wybranych jonów i kompleksów lantanowców w ciekłych roztworach. Wydawn. Nauk. Uniwersytetu im. Adama Mickiewicza w Poznaniu, 1994.

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6

D, Galanin M., ред. T͡S︡entry svechenii͡a︡ redkozemelʹnykh ionov v kristallofosforakh. "Nauka", 1986.

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7

Malinowski, Michał. Wpływ kooperatywnego oddziaływania jonów ziem rzadkich i procesów wielofotonowych na przejścia optyczne w dielektrycznych kryształach laserowych na przykładzie kryształów czterofosforanów. Wydawnictwa Politechniki Warszawskiej, 1990.

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8

I, Ryskin A., Masterov Vadim F, Nauchnyĭ sovet po probleme "Spektroskopii͡a︡ atomov i molekul" (Rossiĭskai͡a︡ akademii͡a︡ nauk), and Russia (Federation). Ministerstvo nauki i tekhnicheskoĭ politiki., eds. Tenth Feofilov Symposium on Spectroscopy of Crystals Activated by Rare-Earth and Transitional-Metal Ions: 3-7 July 1995, St. Petersburg, Russia. SPIE, 1996.

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9

Bettencourt-Dias, Ana de. Luminescence of lanthanide ions in coordination compounds and nanomaterials. Wiley, 2014.

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10

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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11

Sooraj, Hussain Nandyala, and Santos, José Domingos Da Silva., eds. Physics and chemistry of rare-earth ions doped glasses: Edited by Nandyala Sooraj Hussain & José Domingos Da Silva Santos. Trans Tech Publications, 2008.

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12

A, Kapli͡a︡nskiĭ A., Malkin Boris Z, Nikitin S, et al., eds. XI Feofilov Symposium on Spectroscopy of Crystals Activated by Rare-Earth and Transition Metal Ions: 24-28 September 2001, Kazan, Russia. SPIE, 2002.

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13

J, Froisland L., and Petersen A. E, eds. Rapid separation of heavy rare-earth elements. U.S. Dept. of the Interior, Bureau of Mines, 1995.

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14

Schneider, David L. The determination of rare earth elements in marine sediments by ion-exchange separation and ICP emission spectrometry. Woods Hole Oceanographic Institution, 1987.

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15

Karshman, Samir. The determination of rare earth elements in geological materials by x-ray fluorescence spectrometry following ion-exchange separation. s.n.], 1992.

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16

R, Reddy B., Venkateswarlu P, and George C. Marshall Space Flight Center., eds. Development of infrared sensors using energy transfer/energy upconversion process: Study of laser excited fluorescence in rare earth ion doped crystals. National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1994.

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17

Spectroscopy of Solids Containing Rare Earth Ions. Elsevier, 1987. http://dx.doi.org/10.1016/c2009-0-12176-1.

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18

Kaplyanskii, A. A., and R. M. McFarlane. Spectroscopy of Crystals Containing Rare Earth Ions. Elsevier Science & Technology Books, 2012.

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19

Brik, Mikhail G., and Chong-Geng Ma. Theoretical Spectroscopy of Transition Metal and Rare Earth Ions. Edited by Mikhail G. Brik and Ma Chong-Geng. Jenny Stanford Publishing, 2019. http://dx.doi.org/10.1201/9780429278754.

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20

Luminescence centers of rare earth ions in crystal phosphors. Nova Science Publishers, 1988.

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21

Nandyala, Sooraj Hussain, and José Domingos da Silva Santos. Physics and Chemistry of Rare-Earth Ions Doped Glasses. Trans Tech Publications, Limited, 2008.

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22

National Aeronautics and Space Administration (NASA) Staff. Solid Phase Luminescence of Several Rare Earth Ions on Ion-Exchange Films. Independently Published, 2018.

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23

Chen, Ji. Application of Ionic Liquids on Rare Earth Green Separation and Utilization. Springer, 2016.

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24

Chen, Ji. Application of Ionic Liquids on Rare Earth Green Separation and Utilization. Springer, 2015.

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25

Chen, Ji. Application of Ionic Liquids on Rare Earth Green Separation and Utilization. Springer, 2015.

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26

Collins, John Michael. Decay processes of highly excited laser ions in solids. 1987.

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27

Bettencourt-Dias, Ana De. Luminescence of Lanthanide Ions in Coordination Compounds and Nanomaterials. Wiley & Sons, Incorporated, John, 2014.

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28

Nanostructural Materials with Rare Earth Ions: Synthesis, Physicochemical Characterization, Modification and Applications. MDPI, 2022. http://dx.doi.org/10.3390/books978-3-0365-3458-9.

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29

Digonnet, Michel J. F. Rare-Earth-Doped Fiber Lasers and Amplifiers, Third Edition, Two Volume Set. Taylor & Francis Group, 2019.

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30

Chong-Geng, Ma, and Mikhail G. Brik. Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2019.

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31

Chong-Geng, Ma, and Mikhail G. Brik. Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2019.

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32

Bettencourt-Dias, Ana de. Luminescence of Lanthanide Ions in Coordination Compounds and Nanomaterials. Wiley & Sons, Limited, John, 2014.

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33

Bettencourt-Dias, Ana de. Luminescence of Lanthanide Ions in Coordination Compounds and Nanomaterials. Wiley & Sons, Incorporated, John, 2014.

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34

Bettencourt-Dias, Ana de. Luminescence of Lanthanide Ions in Coordination Compounds and Nanomaterials. Wiley & Sons, Incorporated, John, 2014.

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35

(Editor), Helmut Sigel, and Astrid Sigel (Editor), eds. Metal Ions in Biological Systems: Volume 40: The Lanthanides and Their Interrelations with Biosystems (Metal Ions in Biological Systems). CRC, 2003.

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36

Sigel, Helmut. Metal Ions in Biological Systems : Volume 40: The Lanthanides and Their Interrelations with Biosystems. Taylor & Francis Group, 2003.

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37

Metal Ions in Biological Systems : Volume 40: The Lanthanides and Their Interrelations with Biosystems. Taylor & Francis Group, 2003.

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38

Chong-Geng, Ma, and Mikhail G. Brik. Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2019.

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39

Brik, Mikhail, and Ma Chong-Geng. Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2020.

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40

Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2020.

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41

Theoretical Spectroscopy of Transition Metal and Rare Earth Ions: From Free State to Crystal Field. Jenny Stanford Publishing, 2019.

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42

Wybourne, Brian G., and Lidia Smentek. Optical Spectroscopy of Lanthanides: Magnetic and Hyperfine Interactions. Taylor & Francis Group, 2007.

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43

Wybourne, Brian G., and Lidia Smentek. Optical Spectroscopy of Lanthanides: Magnetic and Hyperfine Interactions. CRC, 2007.

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44

Wybourne, Brian G., and Lidia Smentek. Optical Spectroscopy of Lanthanides. Taylor & Francis Group, 2019.

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45

Optical spectroscopy of lanthanides: Magnetic and hyperfine interactions. CRC Press, 2008.

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46

Wybourne, Brian G., and Lidia Smentek. Optical Spectroscopy of Lanthanides: Magnetic and Hyperfine Interactions. Taylor & Francis Group, 2007.

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47

Wybourne, Brian G., and Lidia Smentek. Optical Spectroscopy of Lanthanides: Magnetic and Hyperfine Interactions. Taylor & Francis Group, 2010.

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48

Lanthanide-Based Multifunctional Materials: From Oleds to Sims. Elsevier, 2018.

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49

Martin-Ramos, Pablo, and Manuela Ramos-Silva. Lanthanide-Based Multifunctional Materials: From OLEDs to SIMs. Elsevier, 2018.

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50

Wolf, E. L. Fusion Energy Technology on Earth. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0006.

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Abstract:
Deuterium fusion in a small field-ionization device is described. The small rate of deuterium fusion observed in the deuterium-muon version of the hydrogen molecule-ion is discussed. A simplified description is offered of the tokamak reactor filled with deuterium or deuterium-tritium molecular gases. The potential power output of such devices, neglecting any role of plasma instabilities, is estimated roughly by scaling in temperature and density the formula for fusion in the Sun’s core provided in Chapter 4. If it can be achieved, deuteron fusion would qualify as a renewable energy process giv
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