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D.$0118400 701 1$aHughes,$bRichard$090851 801 0$aIT$bUNINA$gRICA$2UNIMARC 901 $aBK 912 $a990003004800403321 952 $aF/1.402 HIS/1$b7793$fSES 959 $aSES 996 $aAdministration of War Production$9468473 997 $aUNINA LEADER 07697nam 2200397 450 001 9910765776903321 005 20230324102652.0 010 $a3-03842-465-X 035 $a(CKB)5400000000000593 035 $a(NjHacI)995400000000000593 035 $a(EXLCZ)995400000000000593 100 $a20230324d2017 ua 0 101 0 $aeng 135 $aur||||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 00$aHydrometallurgy /$fedited by Suresh Bhargava, Mark Pownceby and Rahul Ram 210 1$aBasel :$cMDPI,$d2017. 210 4$d©2017 215 $a1 online resource (viii, 336 pages) $cillustrations 320 $aIncludes bibliographical references. 327 $aAbout the Special Issue Editors .vii -- Preface to "Hydrometallurgy".ix -- Hsin-Hsiung Huang The Eh-pH Diagram and Its Advances Reprinted from: Metals 2016, 6(1), 23; doi: 3390/met6010023 1 -- Jordan Rutledge and Corby G. Anderson Tannins in Mineral Processing and Extractive Metallurgy Reprinted from: Metals 2015, 5(3), 1520-1542; doi: 10.3390/met5031520.31 -- Divyamaan Wadnerkar, Vishnu K. Pareek and Ranjeet P. Utikar CFD Modelling of Flow and Solids Distribution in Carbon-in-Leach Tanks Reprinted from: Metals 2015, 5(4), 1997-2020; doi: 10.3390/met5041997.51 -- Talitha C. Santini, Martin V. Fey and Robert J. Gilkes Experimental Simulation of Long Term Weathering in Alkaline Bauxite Residue Tailings Reprinted from: Metals 2015, 5(3), 1241-1261; doi: 10.3390/met5031241.71 -- Riadh Slimi and Christian Girard "High-Throughput" Evaluation of Polymer-Supported Triazolic Appendages for Metallic Cations Extraction Reprinted from: Metals 2015, 5(1), 418-427; doi: 10.3390/met5010418 .89 -- Xianwen Zeng, Lijing Niu, Laizhou Song, Xiuli Wang, Xuanming Shiand Jiayun Yan Effect of Polymer Addition on the Structure and Hydrogen Evolution Reaction Property of Nanoflower-Like Molybdenum Disulfide Reprinted from: Metals 2015, 5(4), 1829-1844; doi: 10.3390/met5041829.98 -- Shirin R. King, Juliette Massicot and Andrew M. McDonagh A Straightforward Route to Tetrachloroauric Acid from Gold Metal and Molecular Chlorine for Nanoparticle Synthesis Reprinted from: Metals 2015, 5(3), 1454-1461; doi: 10.3390/met5031454.111 -- Laura Castro, Mari?a Luisa Bla?zquez, Felisa Gonza?lez, Jesu?s A?ngel Mun?oz and Antonio Ballester Exploring the Possibilities of Biological Fabrication of Gold Nanostructures Using Orange Peel Extract Reprinted from: Metals 2015, 5(3), 1609-1619; doi: 10.3390/met5031609.118 -- Yu-Ling Wei, Yu-Shun Wang and Chia-Hung Liu Preparation of Potassium Ferrate from Spent Steel Pickling Liquid Reprinted from: Metals 2015, 5(4), 1770-1787; doi: 10.3390/met5041770.127 -- Ho-Sung Yoon, Chul-Joo Kim, Kyung Woo Chung, Sanghee Jeon, Ilhwan Park, Kyoungkeun Yoo and Manis Kumar Jha The Effect of Grinding and Roasting Conditions on the Selective Leaching of Nd and Dy from NdFeB Magnet Scraps Reprinted from: Metals 2015, 5(3), 1306-1314; doi: 10.3390/met5031306.142 -- Rafael M. Santos, Aldo Van Audenaerde, Yi Wai Chiang, Remus I. Iacobescu, Pol Knops and Tom Van Gerven Nickel Extraction from Olivine: Effect of Carbonation Pre-Treatment Reprinted from: Metals 2015, 5(3), 1620-1644; doi: 10.3390/met5031620.150 -- Hwanju Jo, Ho Young Jo, Sunwon Rha and Pyeong-Koo Lee Direct Aqueous Mineral Carbonation of Waste Slate Using Ammonium Salt Solutions Reprinted from: Metals 2015, 5(4), 2413-2427; doi: 10.3390/met5042413.172 -- Yubiao Li, Gujie Qian, Jun Li and Andrea R. Gerson Chalcopyrite Dissolution at 650 mV and 750 mV in the Presence of Pyrite Reprinted from: Metals 2015, 5(3), 1566-1579; doi: 10.3390/met5031566.184 -- Katsutoshi Inoue, Manju Gurung, Ying Xiong, Hidetaka Kawakita, Keisuke Ohto and Shafiq Alam Hydrometallurgical Recovery of Precious Metals and Removal of Hazardous Metals Using Persimmon Tannin and Persimmon Wastes Reprinted from: Metals 2015, 5(4), 1921-1956; doi: 10.3390/met5041921.195 -- Karin Karlfeldt Fedje, Oskar Modin and Ann-Margret Stro?mvall Copper Recovery from Polluted Soils Using Acidic Washing and Bioelectrochemical Systems Reprinted from: Metals 2015, 5(3), 1328-1348; doi: 10.3390/met5031328.228 -- Yuri Sueoka, Masayuki Sakakibara and Koichiro Sera Heavy Metal Behavior in Lichen-Mine Waste Interactions at an Abandoned Mine Site in Southwest Japan Reprinted from: Metals 2015, 5(3), 1591-1608; doi: 10.3390/met5031591.245 -- Kwangheon Park, Wonyoung Jung and Jihye Park Decontamination of Uranium-Contaminated Soil Sand Using Supercritical CO2 with a TBP-HNO3 Complex Reprinted from: Metals 2015, 5(4), 1788-1798; doi: 10.3390/met5041788.260 -- Sang-hun Lee, Ohhyeok Kwon, Kyoungkeun Yoo and Richard Diaz Alorro Removal of Zn from Contaminated Sediment by FeCl3 in HCl Solution Reprinted from: Metals 2015, 5(4), 1812-1820; doi: 10.3390/met5041812.270 -- Alessio Siciliano Use of Nanoscale Zero-Valent Iron (NZVI) Particles for Chemical Denitrification under Different Operating Conditions Reprinted from: Metals 2015, 5(3), 1507-1519; doi: 10.3390/met5031507.278 -- Ana Paula Paiva, Ma?rio E. Martins and Osvaldo Ortet Palladium(II) Recovery from Hydrochloric Acid Solutions by N,N'-Dimethyl-N,N'- Dibutylthiodiglycolamide Reprinted from: Metals 2015, 5(4), 2303-2315; doi: 10.3390/met5042303.289 -- Diankun Lu, Yongfeng Chang, Wei Wang, Feng Xie, Edouard Asselin and David Dreisinger Copper and Cyanide Extraction with Emulsion Liquid Membrane with LIX 7950 as the Mobile Carrier: Part 1, Emulsion Stability Reprinted from: Metals 2015, 5(4), 2034-2047; doi: 10.3390/met5042034.300 -- Shotaro Saito, Osamu Ohno, Shukuro Igarashi, Takeshi Kato and Hitoshi Yamaguchi Separation and Recycling for Rare Earth Elements by Homogeneous Liquid-Liquid Extraction (HoLLE) Using a pH-Responsive Fluorine-Based Surfactant Reprinted from: Metals 2015, 5(3), 1543-1552; doi: 10.3390/met5031543.312. 330 $aHydrometallurgy, which involves the use of aqueous solutions for the recovery of metals from ores, concentrates, and recycled or residual material, plays an integral role in the multi-billion dollar minerals processing industry. There are numerous hydrometallurgical process technologies used for recovering metals, such as: agglomeration; leaching; solvent extraction/ion exchange; metal recovery; and remediation of tailings/waste. Modern hydrometallurgical routes to extract metals from their ores are faced with a number of issues related to both the chemistry and engineering aspects of the processes involved. These issues include declining ore grade, variations in mineralogy across the deposits and geo-metallurgical locations of the ore site; which would influence the hydrometallurgical route chosen. The development of technologies to improve energy efficiency, water/resources consumption and waste remediation across the circuit is also an important factor to be considered. Therefore, there is an increasing need to develop novel solutions to these existing problems, to implement environmentally sustainable practices in the recovery of these valuable metals. Papers on recent advances, and review articles, particularly in regard to fundamental chemistry and the development of novel techniques and technologies in commercial processing of mineral commodities from their ores, are included in this Special Monograph on "Hydrometallurgy." 606 $aHydrometallurgy 615 0$aHydrometallurgy. 676 $a669.0283 702 $aBhargava$b Suresh 702 $aPownceby$b Mark 702 $aRam$b Rahul 801 0$bNjHacI 801 1$bNjHacl 906 $aBOOK 912 $a9910765776903321 996 $aHydrometallurgy$9796164 997 $aUNINA LEADER 05166nam 2200625 a 450 001 996218389603316 005 20230421044144.0 010 $a1-281-76465-5 010 $a9786611764654 010 $a3-527-62052-4 010 $a3-527-62053-2 035 $a(CKB)1000000000540648 035 $a(EBL)712161 035 $a(SSID)ssj0000167861 035 $a(PQKBManifestationID)11161505 035 $a(PQKBTitleCode)TC0000167861 035 $a(PQKBWorkID)10179008 035 $a(PQKB)10394891 035 $a(MiAaPQ)EBC712161 035 $a(OCoLC)264621141 035 $a(EXLCZ)991000000000540648 100 $a20120114d1997 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 00$aMethods II$b[electronic resource] /$fedited by S. Amelinckx ... [et al.] 210 $aWeinheim $cVCH$d1997 215 $a1 online resource (509 p.) 225 0 $aHandbook of microscopy : applications in materials science, solid-state physics, and chemistry ;$v[v. 2] 300 $aDescription based upon print version of record. 311 $a3-527-29473-2 320 $aIncludes bibliographical references and index. 327 $aHandbook of Microscopy, Applications in Materials Science , Solid-state Physics and Chemistry; Contents; IV Electron Microscopy; 2 Scanning Beam Methods; 2.1 Scanning Reflection Electron Microscopy; 2.1.1 Introduction; 2.1.2 Instrumentation; 2.1.3 Performance; 2.1.4 Modes of Operation; 2.1.4.1 Secondary Electron Imaging; 2.1.4.2 Backscattered Electrons; 2.1.4.3 Special Techniques; 2.1.5 Conclusions; 2.1.6 References; 2.2 Scanning Transmission Electron Microscopy; 2.2.1 Introduction; 2.2.2 Scanning Transmission Electron Microscopy Imaging Modes 327 $a2.2.3 Scanning Transmission Electron Microscopy Theory2.2.4 Inelastic Scattering and Secondary Radiations; 2.2.5 Convergent-Beam and Nanodiffraction; 2.2.6 Coherent Nanodiffraction, Electron Holography, Ptychology; 2.2.7 Holography; 2.2.8 STEM Instrumentation; 2.2.9 Applications of Scanning Transmission Electron Microscopy; 2.2.10 References; 2.3 Scanning Transmission Electron Microscopy: Z Contrast; 2.3.1 Introduction; 2.3.2 Incoherent Imaging with Elastically Scattered Electrons; 2.3.3 Incoherent Imaging with Thermally Scattered Electrons 327 $a2.3.4 Incoherent Imaging using Inelastically Scattered Electrons2.3.5 Probe Channeling; 2.3.6 Applications to Materials Research; 2.3.6.1 Semiconductors; 2.3.6.2 Ceramics; 2.3.6.3 Nanocrystalline Materials; 2.3.7 References; 2.4 Scanning Auger Microscopy (SAM) and Imaging X-Ray Photoelectron Microscopy (XPS); 2.4.1 Introduction; 2.4.2 Basic Principles of Auger Electron Spectroscopy (AES) and X-Ray Photoelectron Spectroscopy (XPS); 2.4.2.1 Auger Electron Spectroscopy (AES); 2.4.2.2 X-Ray Photoelectron Spectroscopy (XPS); 2.4.2.3 Quantitative Analysis in AES and XPS 327 $a2.4.3 Scanning Auger Microscopy (SAM) and Imaging XPS2.4.3.1 Basic Principles of Imaging; 2.4.3.2 General Aspects of Analyzers; 2.4.3.3 Energy Resolution of Deflecting Electrostatic Analyzers; 2.4.3.4 Cylindrical Mirror Analyzer (CMA) versus the Concentric Hemispherical Analyzer (CHA); 2.4.3.5 Imaging Techniques; 2.4.3.6 Magnetic Fields in Imaging XPS; 2.4.4 Characteristics of Scanning Auger Microscopy Images; 2.4.4.1 General Aspects; 2.4.4.2 Background Slope Effects; 2.4.4.3 Substrate Backscattering Effects; 2.4.4.4 Topographic Effects; 2.4.4.5 Beam Current Fluctuation Effects 327 $a2.4.4.6 Edge Effects2.4.5 Conclusion; 2.4.6 References; 2.5 Scanning Microanalysis; 2.5.1 Physical Basis of Electron Probe Microanalysis; 2.5.1.1 Electron Interactions with Solids; 2.5.1.2 X-Ray Emission Spectra; 2.5.1.3 Characteristic X-Ray Spectra; 2.5.1.4 Soft X-Ray Spectra; 2.5.1.5 X-Ray Continuum; 2.5.1.6 Overview of Methods of Scanning Electron Beam Analysis; 2.5.1.7 Electron Probe X-Ray Microanalyzers; 2.5.1.8 Analytical Electron Microscopes; 2.5.1.9 Multipurpose Electron Probe Analytical Systems; 2.5.1.10 X-Ray Emission Spectrometry; 2.5.1.11 Wavelength-Dispersive Spectrometry 327 $a2.5.1.12 Energy-Dispersive Spectrometry 330 $aComprehensive in coverage, written and edited by leading experts in the field, this Handbook is a definitive, up-to-date reference work. The Volumes Methods I and Methods II detail the physico-chemical basis and capabilities of the various microscopy techniques used in materials science. The Volume Applications illustrates the results obtained by all available methods for the main classes of materials, showing which technique can be successfully applied to a given material in order to obtain the desired information.With the Handbook of Microscopy, scientists and engineers involved in m 606 $aMicroscopy 606 $aMaterials$xMicroscopy 615 0$aMicroscopy. 615 0$aMaterials$xMicroscopy. 676 $a502.82 676 $a502/.8/2 701 $aAmelinckx$b S$050786 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a996218389603316 996 $aMethods II$93061935 997 $aUNISA LEADER 01168nam a2200313 i 4500 001 991000200379707536 005 20250211134326.0 008 010810s1981 it er ||1 | ita d 035 $ab10044176-39ule_inst 035 $aPARLA217101$9ExL 040 $aBibl. Dip.le Aggr. Studi Umanistici - Sez. 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