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1

Sims, Jerre G. Risk of pore water hydrogen sulfide toxicity in dredged material bioassays. [Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1995.

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2

Luong, H. V. Microbial leaching of arsenic from low-sulfide gold mine material. S.l: s.n, 1985.

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3

Fumiyuki, Marumo, red. Dynamic processes of material transport and transformation in the earth's interior. Tokyo: Terra Scientific Pub. Co., 1991.

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4

Engineers, National Association of Corrosion. Sulfide stress cracking resistant metallic materials for oilfield equipment. Houston: NACE, 2001.

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National Association of Corrosion Engineers. Sulfide stress cracking resistant metallic materials for oilfield equipment. Houston: NACE, 1995.

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National Association of Corrosion Engineers. Sulfide stress cracking resistant metallic materials for oilfield equipment. Houston: NACE, 1997.

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7

National Association of Corrosion Engineers. Sulfide stress cracking resistant metallic materials for oilfield equipment. Houston: NACE, 1999.

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8

Byerly, Don W. Guidelines for handling excavated acid-producing materials. [Washington, D.C.]: U.S. Dept. of Transportation, Federal Highway Administration, 1990.

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9

National Association of Corrosion Engineers., red. Standardmaterials requirements: Sulfide stress crackingresistant metallic materials for oilfield equipment. Houston: NACE, 2002.

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10

Wang, Haidou. Micro and Nano Sulfide Solid Lubrication. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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11

Chanturiia, V. A. Ėkologicheskie i tekhnologicheskie problemy pererabotki tekhnogennogo sulʹfidsoderzhashchego syrʹi︠a︡ =: Ecological and Technological Challenges in Processing of Technogenic Sulphidebearing Raw Materials. Apatity: Kolʹskiĭ nauch. t︠s︡entr RAN, 2005.

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12

National Association of Corrosion Engineers., red. Materials resistant to sulfide stress cracking in corosive petroleum refining environments. Houston: NACE, 2003.

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13

J, Marchand, i Skalny Jan, red. Materials science of concrete: Sulfate attack mechanisms. Westerville, OH: American Ceramic Society, 1999.

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National Association of Corrosion Engineers., red. Standard recommended practice: Sulfide stress cracking resistant metallic materials for oilfield equipment. Houston: NACE, 2000.

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15

Skalny, Jan. Sulfate Attack on Concrete. London: Taylor & Francis Group Plc, 2004.

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J, Marchand, i Odler Ivan 1930-, red. Sulfate attack on concrete. New York: Spon, 2002.

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J, Marchand, i Odler Ivan 1930-, red. Sulfate attack on concrete. New York: Spon, 2001.

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18

Scragg, Jonathan J. Copper Zinc Tin Sulfide Thin Films for Photovoltaics: Synthesis and Characterisation by Electrochemical Methods. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2011.

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19

Yi-Gao, Sha, i United States. National Aeronautics and Space Administration., red. Growth of wide band gap II-VI compound semiconductors by physical vapor transport. [Washington, DC: National Aeronautics and Space Administration, 1995.

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20

Yi-Gao, Sha, i United States. National Aeronautics and Space Administration., red. Growth of wide band gap II-VI compound semiconductors by physical vapor transport. [Washington, DC: National Aeronautics and Space Administration, 1995.

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21

Smith, C. W. RTS-1, RTS-2, RTS-3 and RTS-4: Sulphide ore mill tailings reference materials. Ottawa, Ont: Minister of Supply and Services Canada, 1990.

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22

Institute of Materials, Minerals, and Mining. A working party report on guidelines on materials requirements for carbon and low alloy steels for H₂S-containing environments in oil and gas production. Wyd. 3. Leeds, UK: Published for the European Federation of Corrosion by Maney Publishing on behalf of the Institute of Materials, Minerals & Mining, 2009.

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23

Zhang, Zhongjie. Stability of calcium sulfate base course in a wet environment. Baton Rouge, LA: Louisiana Transportation Research Center, 2006.

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24

Institute of Materials, Minerals, and Mining., red. A working party report on guidelines on materials requirements for carbon and low alloy steels for H₂S-containing environments in oil and gas production. Wyd. 3. Leeds, UK: Published for the European Federation of Corrosion by Maney Publishing on behalf of the Institute of Materials, Minerals & Mining, 2009.

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25

Rosenberger, F. Research support for cadmium telluride crystal growth: Final report, NASA grant NAG8-842, period of performance, 8/10/90 - 8/9/95. Huntsville, Ala: Center for Microgravity and Materials Research, University of Alabama in Huntsville, 1995.

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26

Rosenberger, F. Research support for cadmium telluride crystal growth: Sixth semi-annual report, NASA grant NAG8-842, period of performance, 2-11-92 - 8-10-93. Huntsville, Ala: Center for Microgravity and Materials Research, University of Alabama in Huntsviile, 1993.

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27

United States. National Aeronautics and Space Administration., red. Research support for cadmium telluride crystal growth: Final report, NASA grant NAG8-842, period of performance, 8/10/90 - 8/9/95. Huntsville, Ala: Center for Microgravity and Materials Research, University of Alabama in Huntsville, 1995.

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28

Rice, David A. Effects of turbomilling parameters on the simultaneous grinding and ferric sulfate leaching of chalcopyrite. Washington, D.C: U.S. Dept. of the Interior, Bureau of Mines, 1991.

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29

Calif.) Sohn International Symposium (2006 San Diego. Advanced processing of metals and materials: Proceedings of the International Symposium, August 27-31, 2006, San Diego, California, USA : International Symposium on Sulfide Smelting 2006. Warrendale, Pa: Minerals, Metals and Materials Society, 2006.

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30

International Symposium on Sulfide Smelting (3rd 2002 Seattle, Wash.). Sulfide smelting 2002: Proceedings of a symposium sponsored by the Extraction and Processing Division (EPD) of TMS (the Minerals, Metals & Materials Society) : held during the 2002 TMS Annual Meeting in Seattle, Washington, February 17-21, 2002. Warrendale, PA: Minerals, Metals & Materials Society (TMS), 2001.

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31

International, NACE. Petroleum and natural gas industries: Materials for use in H2S-containing environments in oil and gas production = Industries du pe trole et du gaz naturel - Mate riaux pour utilisation dans des environnements contenant de l'hydroge ne sulfure (H2S) dans la production de pe trole et de gaz. Wyd. 2. Houston, Tex: NACE, 2009.

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32

Sulfide Stress Cracking Resistant Metallic Materials for Oilfield Equipment (Standard Material Requirement). Natl Assn of Corrosion, 1999.

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33

Dynamic processes of material transport and transformation in the earth's interior (Materials science of minerals and rocks). Kluwer Academic Publishers, 1990.

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34

Sulfide Stress Cracking Resistant Metallic Materials for Oilfield Equipment//Ansi/Nace Standard Mro175-95, Item No. 21302 (Standard Material Requirem). NACE International: The Corrosion Society, 1995.

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35

Field Guide for Managing Iron Sulfide Within Pipelines or Processing Equipment: For Corrosion Control and Operations Personnel. Association for Materials Protection and Performance (AMPP), 2023.

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36

Field Guide for Managing Iron Sulfide Within Pipelines or Processing Equipment: For Corrosion Control and Operations Personnel. Association for Materials Protection and Performance (AMPP), 2018.

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37

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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Streszczenie:
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 organic carbon oxidation. Oxygen is most important in the biosphere, while sulfate dominates in marine systems, and carbon dioxide in environments with low sulfate concentrations. Nitrate respiration is important in the nitrogen cycle but not in organic material degradation because of low nitrate concentrations. Organic material is degraded and oxidized by a complex consortium of organisms, the anaerobic food chain, in which the by-products from physiological types of organisms becomes the starting material of another. The consortium consists of biopolymer hydrolysis, fermentation, hydrogen gas production, and the reduction of either sulfate or carbon dioxide. The by-product of sulfate reduction, sulfide and other reduced sulfur compounds, is oxidized back eventually to sulfate by either non-phototrophic, chemolithotrophic organisms or by phototrophic microbes. The by-product of another main form of anaerobic respiration, carbon dioxide reduction, is methane, which is produced only by specific archaea. Methane is degraded aerobically by bacteria and anaerobically by some archaea, sometimes in a consortium with sulfate-reducing bacteria. Cultivation-independent approaches focusing on 16S rRNA genes and a methane-related gene (mcrA) have been instrumental in understanding these consortia because the microbes remain uncultivated to date. The chapter ends with some discussion about the few eukaryotes able to reproduce without oxygen. In addition to their ecological roles, anaerobic protists provide clues about the evolution of primitive eukaryotes.
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38

Effect of Sulphide on Enhanced Biological Removal of Phosphorus. Taylor & Francis Group, 2017.

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39

Bowes, Carol L. Low dimensional tin sulfide materials. 1996.

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40

Jiang, Tong. Porous tin(IV) sulfide materials. U of Toronto, 1998.

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41

Luminescence: Phenomena, materials, and devices. Commack, N.Y: Nova Science Publishers, 1992.

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42

Sulfide and Selenide Based Materials for Emerging Applications. Elsevier, 2022. http://dx.doi.org/10.1016/c2021-0-00159-0.

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43

Dalapati, Goutam Kumar, Terence Kin Shun Wong, Subrata Kundu, Amit Kumar Chakraborty i Siarhei Zhuk. Sulfide and Selenide Based Materials for Emerging Applications. Elsevier, 2022.

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44

Dalapati, Goutam Kumar, Terence Kin Shun Wong, Subrata Kundu, Amit Kumar Chakraborty i Siarhei Zhuk. Sulfide and Selenide Based Materials for Emerging Applications. Elsevier, 2022.

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45

Robb, Laurence, i Andrew Mitchell. Mineral Deposits of Myanmar (Burma). Society of Economic Geologists, 2021. http://dx.doi.org/10.5382/gb.62.

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Myanmar is richly endowed in natural resources that include tin, tungsten, copper, gold, zinc, lead, nickel, and silver, as well as gemstones. The material covered over a nine-day field trip explores the country’s complex geology, which reflects a collisional history stretching from the Late Triassic to at least Miocene, sited at the eastern end of the India-Asia suture. The country can be divided into three principal metallotects: the Wuntho-Popa magmatic arc, with granites and associated porphyry-type and epithermal Cu-Au mineralization; the Slate Belt (also called the Mogok-Mandalay-Mergui Belt), with multiple precollisional I-type and postcollisional S-type crustal melt granites that host significant tin-tungsten mineralization, and which also are host to a number of orogenic gold deposits; and the Shan Plateau with massive sulfide-type and also MVT-style lead-zinc-silver deposits.
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46

Isbell, R. Australian Soil Classification. CSIRO Publishing, 2016. http://dx.doi.org/10.1071/9781486304646.

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The Australian Soil Classification provides a framework for organising knowledge about Australian soils by allocating soils to classes via a key. Since its publication in 1996, this book has been widely adopted and formally endorsed as the official national system. It has provided a means of communication among scientists and land managers and has proven to be of particular value in land resource survey and research programs, environmental studies and education. Classification is a basic requirement of all science and needs to be periodically revised as knowledge increases. This Second Edition of The Australian Soil Classification includes updates from a working group of the National Committee on Soil and Terrain (NCST), especially in regards to new knowledge about acid sulfate soils (sulfidic materials). Modifications include expanding the classification to incorporate different kinds of sulfidic materials, the introduction of subaqueous soils as well as new Vertosol subgroups, new Hydrosol family criteria and the consistent use of the term reticulate. All soil orders except for Ferrosols and Sodosols are affected by the changes.
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47

Liu, Jiajun, Binshi Xu i Haidou Wang. Micro and Nano Sulfide Solid Lubrication. Springer, 2013.

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48

Kongoli, F. International Symposium on Sulfide Smelting 2006 (Advanced Processing of Metals and Materials). T M S Publications, 2007.

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49

Ito, Kentaro. Copper Zinc Tin Sulfide-Based Thin-Film Solar Cells. Wiley & Sons, Incorporated, John, 2014.

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Ito, Kentaro. Copper Zinc Tin Sulfide-Based Thin Film Solar Cells. Wiley & Sons, Incorporated, John, 2014.

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