Academic literature on the topic 'Arsenic and Antimony'

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Journal articles on the topic "Arsenic and Antimony"

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Zhao, Shu Ting, Hua Chang Li, and Ye Hong Shi. "Speciation Analysis of Antimony and Arsenic in Soil and Remediation of Antimony and Arsenic in Contaminated Soils." Advanced Materials Research 1088 (February 2015): 578–82. http://dx.doi.org/10.4028/www.scientific.net/amr.1088.578.

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Antimony and arsenic are recognized to be toxic carcinogens. With the development of chemical industry, antimony and arsenic pollution problems are becoming more and more serious in soil. This paper described speciation analysis of antimony and arsenic in soil in the latest technical progress. Speciation analysis of arsenic and antimony which use joint techniques and non joint techniques are summarized. This paper also introduced various remediation technologies for antimony and arsenic contaminated soil. Finally, the trend for future technical development in remediation of antimony and arseni
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Boemo, Analía, Irene María Lomniczi, and Elsa Mónica Farfán Torres. "Chronic Arsenic Toxicity: Statistical Study of the Relationships Between Urinary Arsenic, Selenium and Antimony." Journal of Health and Pollution 2, no. 3 (2012): 11–20. http://dx.doi.org/10.5696/2156-9614-2.3.11.

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Background. The groundwater of Argentina's Chaco plain presents arsenic levels above those suitable for human consumption. Studies suggest skin disorders among local populations caused by arsenic intake. The relationship between urinary arsenic and arsenic in drinking water is well known, but urinary arsenic alone is not enough for risk assessment due to modulating factors such as the intake of selenium and antimony. Objectives. Determining the relationship between urinary arsenic, selenium and antimony could contribute to the study of arsenic metabolization in humans. Methods. Arsenic, seleni
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Fu, Xiaohua, Xinyu Song, Qingxing Zheng, et al. "Frontier Materials for Adsorption of Antimony and Arsenic in Aqueous Environments: A Review." International Journal of Environmental Research and Public Health 19, no. 17 (2022): 10824. http://dx.doi.org/10.3390/ijerph191710824.

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As highly toxic and carcinogenic substances, antimony and arsenic often coexist and cause compound pollution. Heavy metal pollution in water significantly threatens human health and the ecological environment. This article elaborates on the sources and hazards of compound antimony and arsenic contamination and systematically discusses the research progress of treatment technology to remove antimony and arsenic in water. Due to the advantages of simple operation, high removal efficiency, low economic cost, and renewable solid and sustainable utilization, adsorption technology for removing antim
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Pawlak, Z., P. S. Cartwright, Adekunle Oloyede, and E. Bayraktar. "Removal of Toxic Arsenic and Antimony from Groundwater Spiro Tunnel Bulkhead in Park City Utah Using Colloidal Iron Hydroxide: Comparison with Reverse Osmosis." Advanced Materials Research 83-86 (December 2009): 553–62. http://dx.doi.org/10.4028/www.scientific.net/amr.83-86.553.

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Verification testing of two model technologies in pilot scale to remove arsenic and antimony based on reverse osmosis and chemical coagulation/filtration systems was conducted in Spiro Tunnel Water Filtration Plant located in Park City, Utah, US. The source water was groundwater in abandoned silver mine, naturally contaminated by 60-80 ppb of arsenic and antimony below 10 ppb. This water represents one of the sources of drinking water for Park City and constitutes about 44% of the water supply. The failure to remove antimony efficiently by coagulation/filtration (only 4.4% removal rate) under
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Sazakli, Eleni, Stavroula V. Zouvelou, Ioannis Kalavrouziotis, and Michalis Leotsinidis. "Arsenic and antimony removal from drinking water by adsorption on granular ferric oxide." Water Science and Technology 71, no. 4 (2014): 622–29. http://dx.doi.org/10.2166/wst.2014.460.

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Arsenic and antimony occur in drinking water due to natural weathering or anthropogenic activities. There has been growing concern about their impact on health. The aim of this study was to assess the efficiency of a granular ferric oxide adsorbent medium to remove arsenic and antimony from drinking water via rapid small-scale column tests (RSSCTs). Three different water matrices – deionized, raw water treated with a reverse osmosis domestic device and raw water – were spiked with arsenic and/or antimony to a concentration of 100 μg L−1. Both elements were successfully adsorbed onto the medium
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Reis, Priscila G., Adriana T. Abreu, Andrea G. Guimarães, Mônica C. Teixeira, Jacqueline de Souza, and Neila M. Silva-Barcellos. "Development and Validation of an Analytical Method for Quantification of Arsenic and Antimony in Liposomes Using Inductively Coupled Plasma-Optical Emission Spectrometry." Journal of AOAC INTERNATIONAL 96, no. 4 (2013): 771–75. http://dx.doi.org/10.5740/jaoacint.10-263.

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Abstract Arsenic and antimony compounds are used to treat endemic diseases, such as cancer, leishmaniasis, and schistosomiasis, in spite of their toxicity. Several studies seeking the development and characterization of nanocarrier systems such as liposomes are being carried out with the aim of developing new drug delivery systems and minimizing the toxicity of these drugs. However, the lack of reference methods to quantify these semimetals within a liposomal matrix hinders the QC of these formulations. Therefore, the validation of an analytical method for arsenic and antimony quantification i
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Ogudov, Alexander S., Natalia F. Chuenko, Maria A. Knyazheva, and Lyudmila Yu Anopchenko. "BEHAVIORAL AND IMMUNOLOGICAL EFFECTS OF EXPOSURE TO ARSENIC AND ANTIMONY CONTAINED IN SULFIDE ORE PROCESSING WASTE." Interexpo GEO-Siberia 4, no. 2 (2021): 133–39. http://dx.doi.org/10.33764/2618-981x-2021-4-2-133-139.

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The accumulation of arsenic and antimony compounds in environmental objects as a result of the development of mineral deposits is a source of public health risk. Arsenic and antimony, when they enter the human body in excess, activate pathophysiological processes at the subcellular, cellular and organ levels, which leads to the development of multiple organ pathology. The study confirmed the effect of arsenic and antimony on emotional-behavioral responses and cellular immune responses in laboratory animals. Four experimental groups of male Wistar rats and one control group were formed. Experie
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Song, Yan, Hong Ying Yang, and Lin Lin Tong. "Bioleaching of Complex Refractory Gold Ore Concentrate of China: Comparison of Shake Flask and Continuous Bioreactor." Advanced Materials Research 1130 (November 2015): 243–46. http://dx.doi.org/10.4028/www.scientific.net/amr.1130.243.

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The laboratory tests of biooxidation and cyanidation were carried out by using samples of the complex refractory gold ore from China. The elemental composition was 16.8 % iron, 18.6 % sulfur, 4.88 % arsenic,2.30 % carbon and 3.49 % antimony. Gold is assayed at 46 g/t. The arsenic oxidation of 88.11 %,carbon removal rate of 32.34 % and antimony oxidation of 23.92 % over 16d was achieved in shake flasks in the presence of the mixed culture (HQ0211: Thiobacillus ferrooxidans Leptospirillum ferrooxidans and Thiobacillus thiooxidans). The continuous bioreactor tests resulted in greater dissolution
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Fortin‐Deschênes, Matthieu, Olga Waller, Qi An, et al. "2D Antimony–Arsenic Alloys." Small 16, no. 3 (2019): 1906540. http://dx.doi.org/10.1002/smll.201906540.

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Andrewes, Paul, William R. Cullen, and Elena Polishchuk. "Arsenic and Antimony Biomethylation byScopulariopsis brevicaulis: Interaction of Arsenic and Antimony Compounds." Environmental Science & Technology 34, no. 11 (2000): 2249–53. http://dx.doi.org/10.1021/es991269p.

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Dissertations / Theses on the topic "Arsenic and Antimony"

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Perry, Meghan Rose. "Arsenic, antimony and visceral leishmaniasis." Thesis, University of Dundee, 2014. https://discovery.dundee.ac.uk/en/studentTheses/14edf50b-4943-4ec8-8556-8aaecf3a9f49.

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In Bihar state, India, the cure rate of antimonial compounds in the treatment of visceral leishmaniasis (VL) has declined from over 85% to less than 50%. This has been attributed to prolonged, widespread misuse of antimonials within the Indian private healthcare system. An alternative resistance hypothesis is that exposure to arsenic in drinking water in this region has resulted in antimony-resistant Leishmania parasites. Leishmania donovani were serially passaged in mice exposed to environmentally-relevant levels of arsenic in drinking water. Arsenic accumulation in organs of these mice was p
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Andrewes, Paul. "Arsenic and antimony biomethylation by Scopulariopsis brevicaulis." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 2000. http://www.collectionscanada.ca/obj/s4/f2/dsk1/tape2/PQDD_0009/NQ56494.pdf.

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Koch, Iris. "Arsenic and antimony species in the terrestrial environment." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 1998. http://www.collectionscanada.ca/obj/s4/f2/dsk2/ftp02/NQ34566.pdf.

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Shaikh, Taimur A. "NEW DEVELOPMENTS IN CYCLIZED ARSENIC AND ANTIMONY THIOLATES." UKnowledge, 2007. http://uknowledge.uky.edu/gradschool_diss/494.

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There is a continued interest in the properties of arsenic thiolate compounds for both industrial and biological uses. Recent discoveries in the medicinal properties of such compounds have resulted in a sustained need for the synthesis of new dithiarsolane compounds for research as anti-leukemic compounds. Close analogues of the 2-halo arsenic dithiolates, namely those with an arsenic-carbon bond instead of an arsenic-halide bond, have recently been shown to have some efficacy towards leukemia cells. Based on the hydrolytic character and the active role of glutathione with arsenic in vivo, the
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Collins, Helen. "Halide transfer reactions of arsenic, antimony and bismuth." Thesis, University of Warwick, 1991. http://wrap.warwick.ac.uk/108064/.

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The study of Group 15 (As, Sb, Bi) halide exchange reactions. The Lewis acidity of SbCls was displayed using various metal halides. Treatment of the metal halides MCln (n=2, M=Mg, Sn; n=3, M=Sc, Y, La, Ti, In; n=4, M=Ti, Sn) with SbCls in MeCN provided antimonate(V) salts of the type [MCln-lL7-n][SbCl6] characterised by ^lgb nmr, electronic and infra-red spectroscopy and accompanying microanalytical data. Depending upon the stoichiometry of the reactants used the antimonate salts have been formulated as [MCln-xL6-(n-x)]x+[SbCl6]x‘ (where n=2, 3, 4; x=l, 2, 3). The formation of mono-, di- and t
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Junk, Margrit. "Material properties of copper alloys containing arsenic, antimony, and bismuth." Doctoral thesis, Technische Universitaet Bergakademie Freiberg Universitaetsbibliothek "Georgius Agricola&quot, 2009. http://nbn-resolving.de/urn:nbn:de:swb:105-1299566.

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This work deals with Early Bronze Age ingot torques, their composition, and material properties. The aim was to decide whether and how a choice of materials by composition or properties was possible during the Early Bronze Age. Early Bronze Age ingot torques were analysed and artefacts from several hoard finds and working stages were investigated metallographically. On the basis of these data the production technology was reconstructed. For the determination of mechanical and technological properties, reference alloys were produced and investigated. The production process was simulated by forg
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Francis, M. D. "Studies of low co-ordinate phosphorus, arsenic and antimony compounds." Thesis, Swansea University, 1999. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.637005.

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The work described in this thesis revolves around one main theme: the chemistry of the group 15 elements phosphorus, arsenic and antimony in low co-ordinate states. The work is divided into seven chapters. Chapter one is a general introduction and briefly reviews the basic properties of the group 15 elements. It also introduces the double bond rule, the concept of low co-ordination and how low co-ordinate main group species can be stabilised using bulky substituents and/or delocalisation of electrons. Chapter two describes the synthesis and characterisation of a group 15 substituted cyclopenta
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Gál, Judit M. "Biogeochemistry of arsenic and antimony : risk assessment in mining areas." Thesis, University of the West of Scotland, 2006. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.430897.

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Rouwane, Asmaa. "Mobilité de l'Arsenic (As) et l'antimoine (Sb) d'origine géogénique dans un sol hydromorphe d'une zone humide agricole." Thesis, Limoges, 2016. http://www.theses.fr/2016LIMO0103.

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Nous avons identifié le rôle de la distribution solide et l’implication de facteurs (potentiel d’oxydoréduction, anions compétiteurs, activité biologique, matière organique (MO)) dans la mobilité de l’arsenic (As) et l’antimoine (Sb) dans un sol de zone humide (ZH) agricole. Pour cela, nous avons effectué i) un suivi de la physico–chimie de l’eau interstitielle de la ZH et ii) des incubations en batch du sol de surface de la ZH (0–20/30 cm). En parallèle, nous avons déterminé la distribution solide de As et Sb sur le sol de la ZH à différentes profondeurs (0–130 cm). Nous avons démontré que As
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Akagi, Susumu 1954. "Thermochemical nature of arsenic, antimony and bismuth in copper smelting matte." Thesis, The University of Arizona, 1988. http://hdl.handle.net/10150/276743.

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The equilibrium distribution measurements of As, Sb and Bi between molten copper and white metal and molten copper and matte were conducted to evaluate the activity coefficients of these impurity elements in copper smelting matte. The experimental results were analyzed through comparison and reconciliation with data in the literature. The following equations, based on a liquid standard state, were obtained for ᵞAs, ᵞSb and ᵞBi in white metal coexisting with copper phase at 1,150-1,200°C. Ln ᵞAs = -2.49 + 0.186 NAs; Ln ᵞSb = -1.23 + 23.5 NSb; Ln ᵞBi = 3.01 + 14.0 NBi where Ni represents the mol
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Books on the topic "Arsenic and Antimony"

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C, Norman Nicholas, ed. Chemistry of arsenic, antimony, and bismuth. Blackie Academic & Professional, 1998.

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Sun, Hongzhe, ed. Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.

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Collins, Helen. Halide transfer reactions of arsenic, antimony and bismuth. typescript, 1991.

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Saul, Patai, ed. The chemistry of organic arsenic, antimony, and bismuth compounds. Wiley, 1994.

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Patai, Saul, ed. The Chemistry of Organic Arsenic, Antimony and Bismuth Compounds. John Wiley & Sons, Ltd, 1994. http://dx.doi.org/10.1002/0470023473.

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Kirkinskiĭ, V. A. Khalʹkogenidy myshʹi͡a︡ka, surʹmy i vismuta pri vysokikh davlenii͡a︡kh. Izd-vo "Nauka," Sibirskoe otd-nie, 1985.

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Behrens, Robert George. Vaporization kinetics and thermodynamics in the arsenic-oxygen and antimony-oxygen systems. University Microfilms International, 1989.

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Holmström, Åke. Removal of antimony, arsenic and bismuth from cooper, silver and gold rich concentrates. Royal Institute of Technology, Dept. of Production Technology (Mining and Steel Industry), 1988.

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Jokilaakso, Ari. Removal of antimony and arsenic from impure copper concentrates under simulated flash smelting reaction shaft conditions. Finnish Academy of Technology, 1992.

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R, Griffitts Wallace, and Geological Survey (U.S.), eds. Distribution of antimony, arsenic, bismuth, and cadmium in heavy-mineral-concentrate samples from the Charlotte 1⁰. U.S. Dept. of the Interior, Geological Survey, 1985.

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Book chapters on the topic "Arsenic and Antimony"

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Turova, Nataliya. "Arsenic, Antimony, Bismuth." In Inorganic Chemistry in Tables. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-20487-6_15.

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Arai, Yuji. "Arsenic and Antimony." In Trace Elements in Soils. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9781444319477.ch16.

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Krannich, L. K. "Involving Phosphorus and Antimony, Phosphorus and Bismuth, Arsenic and Antimony, Arsenic and Bismuth or Antimony and Bismuth." In Inorganic Reactions and Methods. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470145210.ch22.

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Rossman, Toby G., and Catherine B. Klein. "Genetic Toxicology of Arsenic and Antimony." In Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.ch14.

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Jenkins, Richard O. "Biomethylation of Arsenic, Antimony and Bismuth." In Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.ch7.

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Haraguchi, Hiroki. "Metallomics Research Related to Arsenic." In Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.ch4.

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Wang, Kui, Siwang Yu, and Tianlan Zhang. "Arsenic in Traditional Chinese Medicine." In Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.ch5.

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Weidlein, Johann. "Organoindium-Phosphorus, -Arsenic, and -Antimony Compounds." In In Organoindium Compounds. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-662-09144-9_8.

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Sisler, H. H. "In Arsenic, Antimony or Bismuth Allotropes." In Inorganic Reactions and Methods. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470145210.ch10.

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Lloyd, Jonathan R. "Microbial Transformations of Arsenic in Aquifers." In Biological Chemistry of Arsenic, Antimony and Bismuth. John Wiley & Sons, Ltd, 2010. http://dx.doi.org/10.1002/9780470975503.ch6.

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Conference papers on the topic "Arsenic and Antimony"

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Scheiber, Julia. "Arsenic Enrichment on Cast Iron and Mild Steel Surfaces: Trigger or Result of Electrochemical Corrosion." In CORROSION 2016. NACE International, 2016. https://doi.org/10.5006/c2016-07902.

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Abstract At the Soultz-sous-Forêts Enhanced Geothermal System (EGS) site, impairment of cast iron and mild steel surfaces was observed on downhole equipment like production pump, production pipes and some parts of the inner casing. The impairment went always along with arsenic enrichment in the related corrosion layer with increasing arsenic concentration close to severe corrosion damages. The related level of enrichment, which could reach several tenth of weight percent, rose the question whether or not arsenic is a trigger or a result of corrosion phenomena at the Soultz-sous-Forêts EGS site
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Hoy, Edgar F. "The Removal of Arsenic-Based Inhibitors from Petrochemical Equipment." In CORROSION 1988. NACE International, 1988. https://doi.org/10.5006/c1988-88218.

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Abstract Environmental concerns have forced the discontinuance of arsenic compounds as inhibitors in the petrochemical industry. This environmental concern has led to their replacement with either less toxic antimony or organic inhibitors. During the change of inhibitor systems, arsenic removal and toxic arsine gas production are major concerns. Arsenic dissolution rates, total scale removal, and arsine gas production were compared using several commercial solvents. Laboratory and field data confirm that a two-stage solvent involving tetraammonium ethylenediaminetetraacetic acid and hydrogen p
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Lichti, Keith, Monika Ko, and John Kennedy. "Heavy Metal Galvanic Corrosion of Carbon Steel in Geothermal Brines." In CORROSION 2016. NACE International, 2016. https://doi.org/10.5006/c2016-07554.

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Abstract Reductive deposition of heavy metals, arsenic, antimony and antimony-silver alloys has been observed in acidic geothermal waters; two-phase and brine solutions. These waters may be corrosive to carbon steel but observed corrosion rates appear to be accelerated by the presence of reductively deposited heavy metals. Electrochemical testing has proved difficult because of the formation of gases on these metals under cathodic polarisation. This work is focused on laboratory coupon exposures that aim to characterize contributing factors that influence the rate of corrosion of carbon steel
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Shestakov, N. A., R. I. Aizman, A. S. Ogudov, and N. F. Chuenko. "Effect of combined action of arsenic and antimony compounds on renal function in the subchronic test." In VIII Vserossijskaja konferencija s mezhdunarodnym uchastiem «Mediko-fiziologicheskie problemy jekologii cheloveka». Publishing center of Ulyanovsk State University, 2021. http://dx.doi.org/10.34014/mpphe.2021-239-242.

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The study was conducted on male Wistar rats. We used 4 mathematically related series of doses prepared by sequential dilution of water from a man-made lake according to the scheme: arsenic: 0.15 - 0.05 - 0.016 - 0.0055, antimony: 0.68 - 0.227 - 0.075 - 0.025 mg/l. The animals were examined before inoculation (background), on days 40 and 90 of the experiment, taking into account the processes of cumulation of chemical elements in the kidneys. New data on the nature of nephrotoxic effects of arsenic and antimony in the long-term combined intake into the body of laboratory animals have been obtai
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"HYGIENIC ANALYSIS OF ARSENIC LEVELS IN GROUNDWATER AND PUBLIC HEALTH RISK ASSESSMENT." In СОВРЕМЕННЫЕ ПРОБЛЕМЫ ЭКОЛОГИИ И ЗДОРОВЬЯ НАСЕЛЕНИЯ. ЭКОЛОГИЯ И ЗДОРОВЬЕ НАСЕЛЕНИЯ. Иркутский научный центр хирургии и травматологии, 2023. http://dx.doi.org/10.12731/978-5-98277-383-8-art20.

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The Trans-Baikal Territory territory has numerous deposits and ore occurrences of arsenic, gold, antimony. The most favorable conditions for the migration and accumulation of arsenic in groundwater are created in the zone of hypergenesis of gold-antimony and gold ore deposits, confined to chemically weakly active terrigenous rocks. In the region there is a significant technogenic component of water pollution by arsenic, due to the activities of the mining industry. In the enrichment of ores of tin, gold and other deposits with high arsenic content, the main amount of arsenic (up to 80 % and mo
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Case, Christopher. ""There's Antimony, Arsenic, Aluminium, Selenium...Materials in Semiconductor Manufacturing"." In 2008 IEEE/SEMI Advanced Semiconductor Manufacturing Conference (ASMC). IEEE, 2008. http://dx.doi.org/10.1109/asmc.2008.4529068.

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Tuzzolo, Michelle R., Jeffrey T. Kohli, and James E. Shelby. "Hydrogen-induced absorption in glasses containing arsenic and antimony." In San Dieg - DL Tentative, edited by Alexander J. Marker III. SPIE, 1990. http://dx.doi.org/10.1117/12.22513.

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Zhong, Juan, Xiaokui Che, Xinglan Cui, et al. "Bioremediation of Antimony and Arsenic Co-contamination from Antimony Mining Area with Sulfate-reducing Bacteria." In The International Conference on Biomedical Engineering and Bioinformatics. SCITEPRESS - Science and Technology Publications, 2022. http://dx.doi.org/10.5220/0011381600003443.

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Rucker, H., B. Heinemann, R. Barth, et al. "Antimony as Substitute for Arsenic to Eliminate Enhanced Diffusion Effects." In 32nd European Solid-State Device Research Conference. IEEE, 2002. http://dx.doi.org/10.1109/essderc.2002.194904.

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Rogers, Meredith, Kimberly Weil, Dyllon Leather, Bayleigh Sauerwald, Amy Sheinbaum, and Jonathan P. Schmitkons. "MICROBIAL CYCLING OF ARSENIC AND ANTIMONY IN CONTAMINATE AND PRISTINE ENVIRONMENTS." In 53rd Annual GSA Northeastern Section Meeting - 2018. Geological Society of America, 2018. http://dx.doi.org/10.1130/abs/2018ne-311258.

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Reports on the topic "Arsenic and Antimony"

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Bessinger, Brad, and John A. Apps. The Hydrothermal Chemistry of Gold, Arsenic, Antimony, Mercury and Silver. Office of Scientific and Technical Information (OSTI), 2003. http://dx.doi.org/10.2172/840338.

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Gray. L51567 Influence of Filler Wire Carbon and Residual Element Content on the Mechanical Properties. Pipeline Research Council International, Inc. (PRCI), 1998. http://dx.doi.org/10.55274/r0010565.

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This study was conducted to determine the interactive roles of carbon, oxygen, and nitrogen and residual elements such as titanium, chromium, copper, sulfur, phosphorous, aluminum, tin, antimony, and arsenic on weld metal mechanical properties in pipeline steels. Eleven seamless, flux-core electrodes were fabricated with varying compositions and deposited in girth welds in a 24-inch diameter, API 5LX-65 pipe using the gas-metal-arc-weld (GMAW) process. The results of Charpy V-notch and crack-tip opening displacement tests indicate that desirable toughness properties may require the addition of
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Barker, Amanda, Jay Clausen, Thomas Douglas, Anthony Bednar, Christopher Griggs, and William Martin. Environmental impact of metals resulting from military training activities : a review. Engineer Research and Development Center (U.S.), 2022. http://dx.doi.org/10.21079/11681/43348.

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The deposition of metals into the environment as a result of military training activities remains a longterm concern for Defense organizations across the globe. Of particular concern for deposition and potential mobilization are antimony (Sb), arsenic (As), copper (Cu), lead (Pb), and tungsten (W), which are the focus of this review article. The fate, transport, and mobilization of these metals are complicated and depend on a variety of environmental factors that are often convoluted, heterogeneous, and site dependent. While there have been many studies investigating contaminant mobilization o
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Maps showing distribution of gold, antimony, arsenic, bismuth, cadmium, and zinc in stream-sediment samples, Delta 1 degree by 2 degrees Quadrangle, Utah. US Geological Survey, 1993. http://dx.doi.org/10.3133/mf2081d.

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Map showing the distribution of anomalous concentrations of mercury, antimony, and arsenic in stream sediment, heavy-mineral concentrate, and aquatic moss in the Iditarod Quadrangle, Alaska. US Geological Survey, 1997. http://dx.doi.org/10.3133/mf2219c.

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Maps showing the distribution of antimony, arsenic, barium, beryllium, bismuth, cadmium, copper, lead, molybdenum, silver, tin, tungsten, and zinc in heavy-mineral-concentrate samples, Delta 1 degree by 2 degrees Quadrangle, Utah. US Geological Survey, 1993. http://dx.doi.org/10.3133/mf2081e.

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Geochemical map showing distribution of samples of nonmagnetic heavy-mineral concentrates that contain anomalous concentrations of antimony, arsenic, copper, lead, silver, and zinc in the Wallace 1 degree by 2 degrees Quadrangle, Montana and Idaho. US Geological Survey, 1986. http://dx.doi.org/10.3133/i1509b.

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Maps showing distribution of iron, cobalt, barium, strontium, arsenic, antimony, and bismuth in samples of minus-60-mesh (0.25-MM) stream sediment and (or) nonmagnetic heavy-mineral concentrate, Walker Lake 1 degree by 2 degrees Quadrangle, California and Nevada. US Geological Survey, 1988. http://dx.doi.org/10.3133/mf1382i.

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Geochemistry, geochronology, mineralogy, and geology suggest sources of and controls on mineral systems in the southern Toquima Range, Nye County, Nevada; with geochemistry maps of gold, silver, mercury, arsenic, antimony, zinc, copper, lead, molybdenum, bismuth, iron, titanium, vanadium, cobalt, beryllium, boron, fluorine, and sulfur; and with a section on lead associations, mineralogy and paragenesis, and isotopes. US Geological Survey, 2003. http://dx.doi.org/10.3133/mf2327c.

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