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1

Andrew, Philip L. Hydrogen permeation through multilayer metallic membranes. UTIAS, 1991.

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2

Andrew, Philip L. Hydrogen permeation through multilayer metallic membranes. University of Toronto, 1990.

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3

Shved, Mechislav Mikhaĭlovich. Izmenenie ėkspluatat͡s︡ionnykh svoĭstv zheleza i stali pod vlii͡a︡niem vodoroda. Nauk. dumka, 1985.

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4

A, Oriani Richard, Hirth John Price 1930-, and Śmiałowski Michał, eds. Hydrogen degradation of ferrous alloys. Noyes Publications, 1985.

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5

T, Linteris Gregory, and National Institute of Standards and Technology (U.S.), eds. Inhibition of premixed carbon monoxide-hydrogen-nitrogen flames by iron pentacarbonyl. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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6

Teixeira, L. A. The detoxification of effluents containing arsenic with iron sulfate and hydrogen peroxide. Minerals, Metals and Materials Society, 1990.

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7

W, Peterman, and United States. National Aeronautics and Space Administration., eds. Creep rupture behavior of iron superalloys in high-pressure hydrogen: [final report]. National Aeronautics and Space Administration, 1985.

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8

Rumminger, Marc D. Inhibition of premixed carbon monoxide-hydrogen-oxygen-nitrogen flames by iron pentacarbonyl. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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9

Shih, Chi-Y. Corrosion of iron, iron-chromium alloys and stainless steels in hydrogen chloride contaminated oxygen gases at elevated temperatures. UMIST, 1995.

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10

Jonas, Sonja Karen. Hydrogen peroxide-induced cell damage: The role of free radicals and iron complexes. Brunel University, 1988.

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11

Sychev, A. I͡A. Gomogennyĭ kataliz soedinenii͡ami zheleza. "Shtiint͡sa", 1988.

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12

Nikitchenko, Ivan. Chernobylʹ: Kak ėto bylo : dokumentalʹnoe issledovanie. Kam-t abarony pravoŭ prat︠s︡oŭnykh, 1999.

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13

United States. National Aeronautics and Space Administration., ed. An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron. National Aeronautics and Space Administration, 1991.

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14

United States. National Aeronautics and Space Administration., ed. An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron: Annual status report. National Aeronautics and Space Administration, 1993.

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15

United States. National Aeronautics and Space Administration., ed. An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron: Final technical report; NASA-Ames cooperative agreement no. NCC2-63; April 1, 1980 to September 30, 1997. National Aeronautics and Space Administration, 1997.

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16

Buono, Antonio Salvatore. High Pressure Melting of Iron with Nonmetals Sulfur, Carbon, Oxygen, and Hydrogen: Implications for Planetary Cores. [publisher not identified], 2011.

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17

Pollett, Haemi. Effects of iron on the generation of hydrogen sulfide in a mixed culture containing sulfate-reducing bacteria (SRB) and methane-producing bacteria (MPB). National Library of Canada, 2003.

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18

Cavaliere, Pasquale. Hydrogen Assisted Direct Reduction of Iron Oxides. Springer International Publishing AG, 2022.

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19

Hydrogen Assisted Direct Reduction of Iron Oxides. Springer International Publishing AG, 2023.

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20

Mauer, Anne Elizabeth. Hydrogen permeation through iron coated nickel electrodes. 2004.

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21

Bautista, Maria Teresa *. Molecular hydrogen complexes of iron synthesis and spectroscopic properties. 1988.

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22

Smialowski, Michael. Hydrogen in Steel: Effect of Hydrogen on Iron and Steel During Production, Fabrication, and Use. Elsevier Science & Technology Books, 2014.

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23

Foget, Michael K. Goethite-catalyzed decomposition of hydrogen peroxide formulations: Implications for in situ bioremediation. 1992.

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24

Singh, Gursaran. Dissolution of titanium and iron during leaching of ilmenite in H2SO4 or hydrogen chloride. 2005.

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25

Carbon-carbon and carbon-hydrogen coupling reactions on iron and ruthenium [alpha]-diimine complexes. Universiteit van Amsterdam, 1992.

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26

An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron: Final technical report; NASA-Ames cooperative agreement no. NCC2-63; April 1, 1980 to September 30, 1997. National Aeronautics and Space Administration, 1997.

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27

An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron: Annual status report. National Aeronautics and Space Administration, 1993.

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28

An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto iron: Annual status report, January 1, 1994 to December 31, 1994, NASA-AMES cooperative agreement no. NCC-2-63. National Aeronautics and Space Administration, 1994.

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29

Hoeganaes Corporation, Gallatin, TN: Metal dust flash fires and hydrogen explosion; January 31, 2011; March 29, 2011, May 27, 2011, 5 killed, 3 injured. U.S. Chemical Safety and Hazard Investigation Board, 2011.

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30

Dilly, Samuel Erik. Effect of iron catalysts on a Fenton-like process for remediation of a diesel-contaminated soil. 1995.

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31

An investigation of the effect of surface impurities on the adsorption kinetics of hydrogen chemisorbed onto irion: Annual status report, January 1, 1994 to December 31, 1994, NASA-AMES cooperative agreement no. NCC-2-63. National Aeronautics and Space Administration, 1994.

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32

Zhukov, S., ed. World energy transition: trends and risks. Primakov National Research Institute of World Economy and International Relations, Russian Academy of Sciences (IMEMO), 23, Profsoyuznaya Str., Moscow, 117997, Russian Federation, 2021. http://dx.doi.org/10.20542/978-5-9535-0593-2.

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The compendium of works presented at the international conference of young scholars, organized by the Center of Energy Studies, IMEMO RAS and Faculty of International Energy Business of Gubkin Russian State University (NRU) of Oil and Gas, covers various trends of world energy complex development in the context of energy transition. Special attention is paid to the analysis of the situation in the energy sector of Vietnam, China, India, Iran and Uzbekistan as well as to prospects of hydrogen and LNG transport development.
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33

Kirchman, David L. Processes in anoxic environments. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789406.003.0011.

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During organic material degradation in oxic environments, electrons from organic material, the electron donor, are transferred to oxygen, the electron acceptor, during aerobic respiration. Other compounds, such as nitrate, iron, sulfate, and carbon dioxide, take the place of oxygen during anaerobic respiration in anoxic environments. The order in which these compounds are used by bacteria and archaea (only a few eukaryotes are capable of anaerobic respiration) is set by thermodynamics. However, concentrations and chemical state also determine the relative importance of electron acceptors in or
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