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1

Shida, Tadamasa. Electronic absorption spectra of radical ions. Elsevier, 1988.

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2

Pajot, Bernard. Optical Absorption of Impurities and Defects in Semiconducting Crystals: Electronic Absorption of Deep Centres and Vibrational Spectra. Springer Berlin Heidelberg, 2013.

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3

Levitsky, Igor A. Photophysics of Carbon Nanotubes Interfaced with Organic and Inorganic Materials. Springer London, 2012.

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4

R, Alfano R., and United States. National Aeronautics and Space Administration., eds. Time-resolved IR-absorption spectroscopy of hot-electron dynamics in satellite and upper conduction bands in GaP. American Physical Society, 1995.

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5

R, Alfano R., and United States. National Aeronautics and Space Administration., eds. Time-resolved IR-absorption spectroscopy of hot-electron dynamics in satellite and upper conduction bands in GaP. American Physical Society, 1995.

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6

Metcalf, Myers Roger, and Lewis Research Center, eds. Nonequilibrium in a low power arcjet nozzle. National Aeronautics and Space Administration, Lewis Research Center, 1991.

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7

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Kvantovai͡a︡ teorii͡a︡ vzaimodeĭstvii͡a︡ sveta i veshchestva. "Navuka i tėkhnika", 1990.

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8

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Pogloshchenie i ispuskanie sveta kvantovymi sistemami. "Navuka i tėkhnika", 1991.

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9

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Fotometrii͡a︡ : o vozmozhnom i nevozmozhnom v optike. "Nauka i tekhnika", 1989.

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10

Stepanov, Boris Ivanovich. Vvedenie v sovremennui͡u︡ optiku: Osnovnye predstavlenii͡a︡ opticheskoĭ nauki na poroge XX veka. "Nauka i tekhnika", 1989.

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11

Optical Spectroscopies of Electronic Absorption (World Scientific Series in Contemporary Chemical Physics, 17). World Scientific Publishing Company, 1999.

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12

Pajot, Bernard, and Bernard Clerjaud. Optical Absorption of Impurities and Defects in Semiconducting Crystals: Electronic Absorption of Deep Centres and Vibrational Spectra. Springer Berlin / Heidelberg, 2014.

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13

Pajot, Bernard, and Bernard Clerjaud. Optical Absorption of Impurities and Defects in Semiconducting Crystals: Electronic Absorption of Deep Centres and Vibrational Spectra. Springer, 2012.

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14

Suzuki, Hiroshi. Electronic Absorption Spectra and Geometry of Organic Molecules: An Application of Molecular Orbital Theory. Elsevier Science & Technology Books, 2012.

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15

Sa, Jacinto. High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2014.

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16

Unoccupied electronic states: Fundamentals for XANES, EELS, IPS, and BIS. Springer-Verlag, 1992.

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17

High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2014.

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18

Sa, Jacinto. High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2014.

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19

Sa, Jacinto. High-Resolution XAS/XES: Analyzing Electronic Structures of Catalysts. Taylor & Francis Group, 2017.

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20

Levitsky, Igor A., William B. Euler, and Victor A. Karachevtsev. Photophysics of Carbon Nanotubes Interfaced with Organic and Inorganic Materials. Springer, 2012.

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21

Levitsky, Igor A., William B. Euler, and Victor A. Karachevtsev. Photophysics of Carbon Nanotubes Interfaced with Organic and Inorganic Materials. Springer, 2015.

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22

Levitsky, Igor A., William B. Euler, and Victor A. Karachevtsev. Photophysics of Carbon Nanotubes Interfaced with Organic and Inorganic Materials. Springer, 2012.

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23

Time-resolved IR-absorption spectroscopy of hot-electron dynamics in satellite and upper conduction bands in GaP. American Physical Society, 1995.

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24

Time-resolved IR-absorption spectroscopy of hot-electron dynamics in satellite and upper conduction bands in GaP. American Physical Society, 1995.

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25

Wolf, E. L. Solar Cell Physics and Technologies. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0010.

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Solar cells are based on semiconductor pn junctions. Absorption of sunlight is optimal at bandgap energies near one electron volt, and greatly increases the reverse current density. The efficiency of the cell is described by the “filling factor”, and is limited, for single junction cells, by the Quiesser–Shockley limit, near 30 percent. Tandem cells, series combinations of cells, absorb a larger portion of the solar spectrum with higher efficiency but with greater complexity and cost. Such cells are used with focusing optics that inherently raises the efficiency, but also the complexity and co
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26

The physical and chemical basis of molecular biology. Helvetian Press, 2010.

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