EP2877613A1 - Selective reductive electrowinning apparatus and methods - Google Patents
Selective reductive electrowinning apparatus and methodsInfo
- Publication number
- EP2877613A1 EP2877613A1 EP13744888.2A EP13744888A EP2877613A1 EP 2877613 A1 EP2877613 A1 EP 2877613A1 EP 13744888 A EP13744888 A EP 13744888A EP 2877613 A1 EP2877613 A1 EP 2877613A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- anode
- cathode
- chamber
- anolyte
- anodic
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25C—PROCESSES FOR THE ELECTROLYTIC PRODUCTION, RECOVERY OR REFINING OF METALS; APPARATUS THEREFOR
- C25C7/00—Constructional parts, or assemblies thereof, of cells; Servicing or operating of cells
- C25C7/04—Diaphragms; Spacing elements
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25C—PROCESSES FOR THE ELECTROLYTIC PRODUCTION, RECOVERY OR REFINING OF METALS; APPARATUS THEREFOR
- C25C1/00—Electrolytic production, recovery or refining of metals by electrolysis of solutions
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25C—PROCESSES FOR THE ELECTROLYTIC PRODUCTION, RECOVERY OR REFINING OF METALS; APPARATUS THEREFOR
- C25C1/00—Electrolytic production, recovery or refining of metals by electrolysis of solutions
- C25C1/06—Electrolytic production, recovery or refining of metals by electrolysis of solutions or iron group metals, refractory metals or manganese
- C25C1/08—Electrolytic production, recovery or refining of metals by electrolysis of solutions or iron group metals, refractory metals or manganese of nickel or cobalt
Definitions
- the invention relates to the recovery of metal ions.
- the invention relates to an efficient electrolytic method for recovering metal ions from solutions utilizing a sacrificial reductant.
- Metals such as Ni, Co, Cr, Ag, Au, Fe, Cu, Zn, and V are widely used as base catalysts for many industrial applications and processes including, oil making and refinery, batteries, chemical processes, air emissions control, and the like. During m any of the processes, the catalysts will lose their catalytic functions eventually and become wastes. In addition, in the electronics industry, these metals represent a significant waste from board circuits.
- metal-containing wastes e.g., spent catalysts, batteries, and board circuits
- metal wastes contain high portion of metals that have a commercial value.
- the process operates at high cell voltages due to the high over-potential of the water oxidation reaction. Consequently, the high over-potential of the water oxidation reaction a l s o causes the evolution of hydrogen in the cathodic compartment of the cell, which further reduces the efficiency of the metal recovery process and affects the purity and the quality of the material recovered.
- the present invention is premised on the realization that the metals, such as spent metal catalysts, can be efficiently recovered from aqueous solutions. More particularly, the present invention is premised on the realization that metal ions can be efficiently removed from aqueous solutions via electrolysis using a divided electrolytic cell having a basic pH anodic chamber environment containing a sacrificial reductant, an acidic pH cathodic chamber environment containing the desired metal to be recoverd, and ion-conducting separator that physically separates the anodic and cathodic chambers.
- a method of recovering metals comprising applying a voltage or an electrical current to an electrolytic cell, comprising an anode disposed in an anodic chamber; a cathode disposed in a cathodic chamber; a separator disposed between the anode and the cathode to physically separate the anodic and cathodic chambers, the separator allowing the transport of ions between the anodic and cathodic chambers; an anolyte disposed within the anodic chamber, comprising a sacrificial reductant, wherein the anolyte has a basic pH; a catholyte disposed within the cathodic chamber, comprising at least one or more metallic ions dissolved therein, wherein the catholyte has an acidic pH; and an electrical connection between the anode and the cathode.
- the voltage or the electrical current is applied to the electrolytic cell across the cathode and the anode via the electrical connection, wherein the voltage or the electrical current is sufficient to reduce the at least one or more metallic ions to form at least one or more elemental metal species at the cathode, and to oxidize the sacrificial reductant at the anode.
- an electrochemical cell comprising an anode in an anodic chamber; a cathode in a cathodic chamber; a separator disposed between the anode and the cathode to physically separate the anodic and cathodic chambers, the separator allowing the transport of ions between the anodic and cathodic chambers; an anolyte disposed within the anodic chamber, comprising a sacrificial reductant, wherein the anolyte has a basic pH; a catholyte disposed within the cathodic chamber, comprising one or more metallic ions dissolved therein, wherein the catholyte has an acidic pH; and an electrical connection between the anode and the cathode.
- FIG. 1 is a diagrammatical view of a simplified electrolytic cell, in accordance with an embodiment of the present invention.
- FIG. 2 is a cyclic voltammagram showing a comparison of recovering nickel via a traditional electrowinning (TE) process, and a selective reductive electrowinning (SRE) process in accordance with an embodiment of the present invention
- FIG. 3 is a graph of current (mA) versus time (seconds) comparing the electrochemical performance of a TE process versus a SRE process in accordance with an embodiment of the present invention.
- FIG. 1 is a diagrammatic depiction of a simplified electrolytic cell 10 configured for flow cell processing to achieve the recovery of metals from an aqueous solution.
- the simplified electrolytic cell 10 comprises a cathodic chamber 15 containing a cathode 20, an anodic chamber 25 containing an anode 30, wherein the cathodic chamber 15 and the anodic chamber 25 are physically separated from each other by a separator 35.
- the separator 35 allows the transport of ions between the cathodic chamber 15 and the anodic chamber 25.
- the cathode 20 and the anode 30 are configured with an electrical connection 40 therebetween along with a voltage source 45, which supplies a voltage or an electrical current to the electrochemical cell 10.
- a feedstock solution 50 containing one or more metal ions intended for recovery becomes at least one component of a catholyte 52 having an acidic pH, which is flowed through the cathodic chamber 15, and thereby contacting the cathode 15, through a cathodic chamber inlet 53 and a cathodic chamber outlet 55.
- a sacrificial reductant 60 becomes at least one component in an anolyte 62 having a basic pH, which is flowed through the anodic chamber 25, and thereby contacting the anode 30, through an anodic chamber inlet 63 and an anodic chamber outlet 63.
- the effluents of the cathodic chamber 15 and the anodic chamber 25 may be recirculated through their respective recirculation pathways 70, 80.
- the metals are present in the feedstock 50 in the form of cations, (i.e., oxidized forms of a metal).
- metals amenable to the present method of SRE processing include, but are not limited to, zinc, chromium, tantalum, gallium, iron, cadmium, indium, thallium, cobalt, nickel, tin, lead, copper, bismuth, silver, mercury, chromium, niobium, vanadium, manganese, aluminum, and combinations thereof.
- a metal suitably recovered from an aqueous sample include nickel.
- a metal suitably recovered from an aqueous sample include cobalt. The respective reduction reactions are shown below:
- Equation 1 Ni +2 (ag) + 2 e " ⁇ Ni (-0.26V vs. SHE)
- Equation 2 Co +2 (ag) + 2 e " ⁇ Ni (-0.28V vs. SHE)
- the feedstock 50 is not particularly limited in the concentration of its metal(s).
- Exemplary metal concentrations include, but are not limited to from about 500 pm and lower, from about 250 ppm and lower, from about 100 ppm and lower, or from about 50 ppm and lower.
- the de-metalized water obtained from the above feedstock may have metal concentrations sufficiently low to permit direct discharge to the environment without further processing.
- the catholyte 52 may be recirculated until the desired metal reduction is achieved.
- the pH of the feedstock solution 50 is not limited, according to embodiments of the present invention the pH of the catholyte 52 is acidic, (i.e. pH is less than 7). According to an embodiment, the pH of the catholyte 52 is about 3 to about 6. Accordingly, to lower pH, one or more acidic electrolytes may be combined with the feedstock. Exemplary acidic electrolytes include, but are not limited to, boric acid, sulfuric acid, hydrochloric acid, phosphoric acid, or combinations thereof. [0019] According to embodiments of the present invention, the anolyte 62 includes a sacrificial reductant, which effectively lowers the electrochemical potential of the electrolytic cell.
- Exemplary sacrificial reductants include, but are not limited to, urea; ammonia; ammonium salts; alcohols, such as ethanol or methanol, or combinations thereof.
- the sacrificial reductant 60 may comprise ammonium hydroxide.
- the sacrificial reductant is provided to the anode 30 in an amount that exceeds the stoichiometric amount required by metals in the catholyte 52.
- the sacrificial reductant may be present in the anolyte 62 in a large excess and the excess sacrificial reductant is recycled in the process.
- the pH of the anolyte 62 is basic, (i.e. pH is greater than 7). According to an embodiment, the pH of the anolyte 62 is about 9 or greater. Accordingly, to raise pH of the anolyte, one or more alkaline electrolytes may be combined with the sacrificial reductant 60.
- Alkaline electrolytes may be liquids and/or gels.
- the alkaline electrolyte comprises an alkali metal hydroxide or an alkali earth metal hydroxide salt, such as lithium hydroxide, rubidium hydroxide, cesium hydroxide, barium hydroxide, strontium hydroxide, potassium hydroxide, sodium hydroxide, magnesium hydroxide, calcium hydroxide, sodium carbonate, potassium carbonate, and mixtures thereof may be used.
- the anolyte 62 may comprise an alkaline electrolyte such as potassium hydroxide.
- the anolyte 62 may comprise as a gel, such as a solid polymer electrolyte.
- Suitable alkaline electrolytic gels include, for example, those gels containing polyacrylic acid, polyacrylates, polymethacrylates, polyacrylamides, sulfonated-polymers and similar polymers and copolymers.
- the alkaline electrolytic gel may be prepared using any suitable method. One method includes forming a polymer and then injecting a hydroxide salt electrolyte into the polymer to form an alkaline electrolyte gel or polymeric mixture. In another method, the monomer may be polymerized in the presence of a hydroxide salt electrolyte.
- the electrodes may each comprise a conductor or a support that can be coated with a more active conductor.
- the conducting component is not particularly limited to any species of conductor, but the conducting component should be comprised of a substrate whereon the metal can deposit.
- the conducting component of the cathode 20 may comprise carbon, such as carbon fibers, carbon paper, glassy carbon, carbon nanofibers, carbon nanotubes, and the like; or conducting metals, such as cobalt, copper, iridium, iron, nickel, platinum, palladium, ruthenium, rhodium and mixtures and alloys thereof.
- the support material and/or conducting component of the cathode 20 should be selected so as to be compatible with the acidic electrolyte of the catholyte 52.
- metal ions are reduced at the cathode 20 and are deposited thereon. Moreover, metal deposition rates are related to the available surface area. As such, large surface area substrates are generally preferred.
- the oxidation of a sacrificial reductant occurs at the anode 30 in the alkaline electrolyte composition or medium of the anodic chamber 25.
- Exemplary sacrificial reductants urea and ammonia are oxidized at the anode 30 in an alkaline electrolyte medium according to the following equations:
- Equation 3 2 NH 3 + 6 OH “ ⁇ N 2 + 6 H 2 0 + 6 e " (-0.77 V vs. SHE)
- Equation 4 CO(NH 2 ) 2 + 6 OH " ⁇ N 2 + 5 H 2 0 + C0 2 + 6 e " (-0.034 V vs. SHE)
- the conducting component of the anode 30 may be one or more metals active toward adsorbing and oxidizing the sacrificial reductants urea and/or ammonia.
- one or more metals active toward the oxidation of ammonia include metals disclosed in commonly-assigned U.S. Patent No.
- the oxidation of ammonia may be performed with a conducting component comprising platinum, iridium, ruthenium, rhodium and their combinations.
- the conducting component may be co-deposited as alloys and/or by layers.
- metals active toward the oxidation of urea include metals disclosed in commonly-assigned U.S. Patent Application Publication No.
- the oxidation of urea may be performed with a conducting component comprising transition metals, such as nickel; or precious metals such as platinum, iridium, ruthenium, rhodium; and their combinations.
- a conducting component comprising transition metals, such as nickel; or precious metals such as platinum, iridium, ruthenium, rhodium; and their combinations.
- Especially effective metals for the oxidation of urea include nickel and other transition metals.
- the metals may be co-deposited as alloys and/or by layers.
- the active metals may be in an oxidized form, such as nickel oxyhydroxide.
- metals active toward the oxidation of ethanol and methanol include those metals disclosed in commonly-assigned U.S. Patent Application Publication No. 2008/0318097, which is incorporated herein by reference in its entirety.
- the anode 30 may comprise nickel electrodeposited on a carbon support, such as carbon fibers, carbon paper, glassy carbon, carbon nanofibers, or carbon nanotubes, or nickel formed into beads and suspended in a nickel gauze.
- a carbon support such as carbon fibers, carbon paper, glassy carbon, carbon nanofibers, or carbon nanotubes, or nickel formed into beads and suspended in a nickel gauze.
- the NOMN electrode may be comprised of metallic substrates (Ni foil, Ni gauze, Ti foil and Ti gauze) that have been electroplated with Ni using a Watts bath.
- the plated nickel electrode may be activated by being immersed in a solution containing nickel sulfate, sodium acetate, and sodium hydroxide at 33°C.
- Stainless steel may be used as a counter electrode.
- the plated nickel electrode may be used as the anode and cathode by manual polarity switching at 6.25 A/m 2 for four 1 minute cycles and 2 two minute cycles. Finally, the electrode may be kept as the anode at the same current and maintained thereat for two hours.
- the activated electrodes yield higher current densities than those of M/Ni, where M represents a metallic substrate.
- the structure of the anode 30 is not limited to any specific shape or form.
- the conducting component may be formed as foil, wire, gauze, bead, or coated onto a support.
- Suitable anode 30 support materials may be chosen from many known supports, such as foils, meshes and sponges, for example.
- the support material may include, but is not limited to, Ni foils, Ti foils, carbon fibers, carbon paper, glassy carbon, carbon nanofibers, and carbon nanotubes. Aside from these specific support materials listed, other suitable supports will be recognized by those of ordinary skill in the art.
- the selection of the conducting component and/or the support materials of the anode 30 should be selected so as to be compatible with the basic electrolyte of the anolyte 62.
- the separator is used to compartmentalize the cathodic chamber 15 and the anodic chamber 25. Separators should be constructed from materials chemically resistant to the electrolyte compositions of the catholyte 52 and the anolyte 62. According to an embodiment, the separator comprises a cation conducting polymer including a polymeric backbone comprising
- polyetheretherketones polyetherketones, polyetherketones, polyethersulfones, polyphenylene sulfide, polyphenylene ethers, polyparaphenylene, polyethylene, polypropylene, polystyrene, a fluoropolymer, or combinations thereof; and a plurality of protonic acid groups covalently bonded to the polymeric backbone.
- protonic acid groups include, but are not limited to, sulfonic acids, carbonic acids, phosphoric acids, boronic acids, or combinations thereof.
- the cation conducting polymer comprises a sulfonated tetrafluoroethylene-based fluoropolymer- copolymer; a sulfonated poly(ether ether ketone); or a sulfonated polyimide.
- An exemplary sulfonated tetrafluoroethylene-based fluoropolymer-copolymer is ethanesulfonyl fluoride, 2-[1 -[difluoro-[(trifluoroethenyl)oxy]methyl]-1 ,2,2,2- tetrafluoroethoxy]-1 , 1 ,2,2,-tetrafluoro-, with tetrafluoroethylene.
- the electrolytic cell may operate over varying ranges of temperature and pressure.
- the operating pressure may be about atmospheric pressure or ambient pressure with no upper pressure limit other than the physical limits of the reaction vessel.
- the operating temperature range may be from about the freezing point of the waste water to about 100° C and may be related to the operating pressure of the electrolytic cell. At one atmosphere of pressure, it is practical to keep the operating temperature to about 80° C or less, because at higher
- an acceptable operating temperature may be within a range from about 0° C to about 80° C; or from about 20° C to about 65° C. More specifically, an operating temperature within a range from about 20 °C to about 30° C is particularly useful.
- the present invention is not limited to any particular source of electricity. That is, electricity can be provided from renewable energy sources: wind, solar, etc., storage sources (batteries), and conventional grid power generation.
- the voltage difference applied across the cathode 20 and the anode 30 of the electrochemical cell 10 is maintained at a value that provides for the reduction of the metal ions while avoiding substantial hydrogen generation at the cathode or substantial oxygen generation at the anode.
- substantially hydrogen evolution and “substantial” oxygen evolution means that less than about 20% of the electrical energy is spent generating hydrogen and/or oxygen. In other words, about 80% or more of the applied voltage is spent removing the waste metal ions. For example, in one embodiment, less than about 10% of the electrical energy is spent generating hydrogen and/or oxygen. In yet another embodiment, less than about 5% of the electrical energy is spent generating hydrogen and/or oxygen. In yet another embodiment, less than about 3% of the electrical energy is spent generating hydrogen and/or oxygen. In one exemplary embodiment, the voltage applied across the cathode 20 and the anode 30 does not generate any hydrogen at the cathode.
- the voltage difference applied across cathode 20 and the anode 30 can vary depending on the sacrificial reductant and the metal to be recovered. For example, for the recovery of nickel using ammonia as the sacrificial reductant, voltages between about 0.14 V and 0.9 V are sufficient, whereas voltages between about 0.66 V and about 1 .1 V are sufficient when urea is used as the sacrificial reductant. According to an embodiment of the present invention, the voltage difference applied across the cathode 20 and the anode 30 of a single electrolytic cell for the recovery of nickel may be maintained at a voltage of about 1 .1 volts or lower.
- the single cell voltage difference may be at a value between about 0.01 volts to about 1.1 volts. In yet another embodiment, the single cell voltage may be at a value of about 0.2 volts to about 0.9 volts.
- metals such as zinc, chromium, tantalum, gallium, iron, cadmium, indium, thallium, cobalt, nickel, tin, lead, chromium, niobium, vanadium, manganese, aluminum, and combinations thereof can be recovered using a cell voltage that is sustained no higher than about 1 .5 V.
- suitable cell voltages include, but are not limited to, 1 .4 V, 1 .3 V, 1.2 V, or 1 .1 V, for example.
- the recovery of metals from the feedstock 50 is realized by simultaneously contacting the catholyte 52 containing the feedstock 50 with the cathode 20 and contacting the anolyte 62 containing the sacrificial reductant 60 with the anode 30 of the electrochemical cell 10.
- the electro-oxidation of the sacrificial reductant 60 for example ammonia
- the reduction of the metal species, such as nickel takes place according to Equation 1 to thereby deposit metallic nickel on the cathode.
- the electrolytic method disclosed herein provides for the efficient recovery of metals, by utilizing a sacrificial reductant to lower the requisite electrical potential. While the embodiment of FIG. 1 is shown as a flow cell, the principles of the present invention are readily adaptable to other configurations, such as batch processing.
- the same solution was used as the catholyte and the anolyte, which was a solution containing 0.25 M N1CI2, 1 M KCI, and 30 g/L H 3 B0 4 .
- the catholyte was a solution containing 0.25 M NiCI 2 , 1 M KCI, and 30 g/L H 3 B0
- the anolyte was a solution containing 1 M NH 4 OH and 1 M KOH.
- the total time for electrochemical recovery of Ni was fixed at 2 hours. The mass change was measured for the both the TE and the SRE processes and compared.
- cyclic voltammetry experiments provide a comparison for the recovery of nickel using the traditional electrowinning (TE) process versus the selective reductive electrowinning (SRE) process of the present invention.
- the cell voltage for the SRE process to recover nickel decreases from 2.35 V to 0.54 V, which represents a 77% lower energy consumption when compared to the TE process.
- the SRE process outperforms the TE process in all variables affecting the cost of nickel recovery.
- Table 1 Comparison of traditional electrowinning (TE) versus selective reductive electrowinning (SRE) processes.
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- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Electrochemistry (AREA)
- Materials Engineering (AREA)
- Metallurgy (AREA)
- Organic Chemistry (AREA)
- Electrolytic Production Of Metals (AREA)
Abstract
Description
Claims
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261675994P | 2012-07-26 | 2012-07-26 | |
| US13/802,919 US20140027301A1 (en) | 2012-07-26 | 2013-03-14 | Selective reductive electrowinning apparatus and method |
| PCT/US2013/050601 WO2014018302A1 (en) | 2012-07-26 | 2013-07-16 | Selective reductive electrowinning apparatus and methods |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP2877613A1 true EP2877613A1 (en) | 2015-06-03 |
| EP2877613B1 EP2877613B1 (en) | 2018-03-28 |
Family
ID=49993813
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP13744888.2A Not-in-force EP2877613B1 (en) | 2012-07-26 | 2013-07-16 | Selective reductive electrowinning method |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20140027301A1 (en) |
| EP (1) | EP2877613B1 (en) |
| CN (1) | CN104955987A (en) |
| CA (1) | CA2879727A1 (en) |
| WO (1) | WO2014018302A1 (en) |
Families Citing this family (14)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| BR112018072807A2 (en) * | 2016-06-30 | 2019-03-06 | The Board Of Trustees Of The Leland Stanford Junior University | method for extracting metal ions from water |
| CN109534455A (en) * | 2018-11-09 | 2019-03-29 | 西安交通大学 | A kind of electrochemical method of low-consumption high-efficiency processing heavy metal wastewater thereby |
| EP3887576B1 (en) * | 2018-11-30 | 2022-12-21 | Sedo Engineering SA | Electrochemical reactor and its cleaning or regeneration |
| CN109609974A (en) * | 2019-01-29 | 2019-04-12 | 长江师范学院 | A method for reducing the voltage and energy consumption of a zinc electroplating cell |
| US11201345B2 (en) | 2019-05-20 | 2021-12-14 | Creek Channel Inc. | Fe—Cr redox flow battery systems and methods of manufacture and operation |
| US12151958B2 (en) * | 2019-08-08 | 2024-11-26 | Robert Bosch Gmbh | Desalination device electrode activation |
| CN110747487B (en) * | 2019-11-12 | 2023-06-20 | 上海莒纳新材料科技有限公司 | Electrolytic water oxygen generation system and airtight space air quality control system |
| CN114059099A (en) * | 2020-07-31 | 2022-02-18 | 株式会社东进世美肯 | Metal ion recovery device, and electrode manufacturing method and manufacturing device using same |
| US11735756B2 (en) | 2020-11-16 | 2023-08-22 | Cougar Creek Technologies, Llc | Redox flow battery systems and methods utilizing a temporal energy profile |
| BR112023019116A2 (en) * | 2021-03-24 | 2023-10-24 | Electrasteel Inc | ORE DISSOLUTION AND IRON CONVERSION SYSTEM |
| JP7616255B2 (en) * | 2023-01-20 | 2025-01-17 | トヨタ自動車株式会社 | METHOD FOR RECOVERING METALS AND APPARATUS FOR RECOVERING METALS |
| WO2024250052A1 (en) * | 2023-06-07 | 2024-12-12 | Fortescue Future Industries Pty Ltd | Electrochemical flow reactor |
| CN121263558A (en) * | 2023-06-07 | 2026-01-02 | 福特斯丘未来工业私人有限公司 | Method and system for producing iron-containing products from the electrolytic production of iron ore particles |
| WO2025024578A2 (en) * | 2023-07-25 | 2025-01-30 | Blue Planet Strategies, Llc | Structures, methods, and processes for the selective removal of target component from a composition |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| USRE24865E (en) * | 1960-09-06 | Ion exchange materials and method of | ||
| NL256163A (en) * | 1959-09-28 | |||
| JPS5819752B2 (en) * | 1974-03-30 | 1983-04-19 | カガクギジユツチヨウ キンゾクザイリヨウギジユツケンキユウシヨチヨウ | dodenkaihou |
| US4279711A (en) * | 1980-01-21 | 1981-07-21 | Vining Paul H | Aqueous electrowinning of metals |
| US4330377A (en) * | 1980-07-10 | 1982-05-18 | Vulcan Materials Company | Electrolytic process for the production of tin and tin products |
| CA1214748A (en) * | 1982-08-11 | 1986-12-02 | Inco Limited | Process for nickel electroreplenishment for nickel refinery electrolyte |
| US4632738A (en) * | 1982-09-03 | 1986-12-30 | Great Central Mines Ltd. | Hydrometallurgical copper process |
| US4431496A (en) * | 1982-09-07 | 1984-02-14 | Institute Of Gas Technology | Depolarized electrowinning of zinc |
| US4460444A (en) * | 1983-04-06 | 1984-07-17 | Westinghouse Electric Corp. | Hydriodic acid-anode-depolarized hydrogen generator |
| US4536513A (en) * | 1984-03-14 | 1985-08-20 | E. R. Squibb & Sons, Inc. | 7-Oxabicycloheptane substituted prostaglandin interphenylene analogs useful in the treatment of thrombolytic disease |
| US4627899A (en) * | 1985-02-15 | 1986-12-09 | The United States Of America As Represented By The Secretary Of The Interior | Electrolytic cell and methods combining electrowinning and electrochemical reactions employing a membrane or diaphragm |
| US4752364A (en) * | 1986-05-19 | 1988-06-21 | Delphi Research, Inc. | Method for treating organic waste material and a catalyst/cocatalyst composition useful therefor |
| US4699700A (en) * | 1986-05-19 | 1987-10-13 | Delphi Research, Inc. | Method for hydrogen production and metal winning, and a catalyst/cocatalyst composition useful therefor |
| DE4035316C2 (en) * | 1990-11-07 | 1993-11-04 | Daimler Benz Ag | METHOD FOR ELECTROLYTIC RECOVERY OF NICKEL FROM CHLORIDE-CONTAINING ELECTROLYTIC BATHS |
| US8216437B2 (en) | 2003-10-10 | 2012-07-10 | Ohio University | Electrochemical cell for oxidation of ammonia and ethanol |
| US7485211B2 (en) | 2003-10-10 | 2009-02-03 | Ohio University | Electro-catalysts for the oxidation of ammonia in alkaline media |
| US7442286B2 (en) * | 2004-02-26 | 2008-10-28 | Atotech Deutschland Gmbh | Articles with electroplated zinc-nickel ternary and higher alloys, electroplating baths, processes and systems for electroplating such alloys |
| US8303781B2 (en) | 2007-10-15 | 2012-11-06 | Ohio University | Electrolytic cells and methods for the production of ammonia and hydrogen |
| KR101800476B1 (en) * | 2010-04-02 | 2017-11-22 | 오하이오 유니버시티 | Selective Catalytic Reduction via Electrolysis of Urea |
-
2013
- 2013-03-14 US US13/802,919 patent/US20140027301A1/en not_active Abandoned
- 2013-07-16 CA CA2879727A patent/CA2879727A1/en not_active Abandoned
- 2013-07-16 CN CN201380048704.XA patent/CN104955987A/en active Pending
- 2013-07-16 WO PCT/US2013/050601 patent/WO2014018302A1/en not_active Ceased
- 2013-07-16 EP EP13744888.2A patent/EP2877613B1/en not_active Not-in-force
Non-Patent Citations (1)
| Title |
|---|
| See references of WO2014018302A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| EP2877613B1 (en) | 2018-03-28 |
| US20140027301A1 (en) | 2014-01-30 |
| WO2014018302A1 (en) | 2014-01-30 |
| CA2879727A1 (en) | 2014-01-30 |
| CN104955987A (en) | 2015-09-30 |
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