Method for leaching metal sulfides with reagents containing thiocarbonyl functional groups

Thiocarbonyl functional group-containing reagents enhance metal sulfide leaching in hydrometallurgical processes, addressing low yields and passivation issues, thereby improving copper recovery from chalcopyrite and other sulfides.

JP7797434B2Active Publication Date: 2026-01-13JETTI RESOURCES
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Patent Information

Application Number
JP2023061731
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-12-05
Filing Date
2023-04-05
Publication Date
2026-01-13
Estimated Expiration
2037-10-19

AI Technical Summary

Technical Problem

Hydrometallurgical methods face low extraction yields when processing certain metal sulfide-containing ores, particularly due to passivation issues during the leaching of chalcopyrite, which limits the recovery of metals like copper.

Method used

The use of reagents containing thiocarbonyl functional groups, such as thiourea, in acidic sulfate or halide leach solutions enhances the leaching of metals from metal sulfides by increasing the leaching rate, even in the presence of halogens, and allows for the recovery of metals like copper from ores containing chalcopyrite and other sulfides.

Benefits of technology

The method achieves higher metal extraction yields and rates, making it suitable for industrial applications by overcoming passivation and improving the recovery of copper and other metals from complex and low-grade ores.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide methods of recovering metals from an ore containing metal sulfides.SOLUTION: The methods involve contacting the metal sulfides with an acidic sulfate solution containing ferric sulfate and a reagent that has a thiocarbonyl functional group, where the concentration of reagent in the acidic sulfate solution is sufficient to increase the rate of metal ion extraction relative to an acidic sulfate solution that does not contain the reagent, to produce a pregnant solution containing the metal ions.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] This application claims priority to U.S. Patent Application Nos. 62 / 410,331, 62 / 410,348, and 62 / 410,351, filed October 19, 2016, and U.S. Patent Application No. 62 / 430,333, filed December 5, 2016. The contents of each of the above U.S. patent applications are incorporated herein by reference.

[0002] This disclosure relates to methods for leaching metals from ores containing metal sulfides, and in particular to hydrometallurgical processes for extracting base metals from ores containing base metal sulfides using reagents having thiocarbonyl functional groups. This disclosure also relates to recovering said reagents from a pregnant leach solution for recycling to a hydrometallurgical process for extracting base metals from ores containing base metal sulfides using reagents having thiocarbonyl functional groups. This disclosure also relates to methods for recovering catalysts from spent leach materials, and in particular to recovering reagents having thiocarbonyl functional groups from spent leach materials containing base metal sulfides from which the base metals have been leached. [Background technology]

[0003] Aqueous processing of minerals offers several advantages over pyrometallurgical approaches, especially when dealing with complex and / or low-grade ores. Hydrometallurgical methods have a major disadvantage in that they have low extraction yields when applied to some metal sulfide-containing ores. It is desirable to develop processes that can achieve high metal extraction yields on time scales of industrial interest.

[0004] For example, chalcopyrite is a semiconductor and therefore corrodes electrochemically in oxidizing solutions. The overall leaching reaction in a ferric sulfate solvent is: CuFeS2(s)+2Fe2(S04)3(a)→CuS04(a)+5FeS04(a)+2S 0 (s)

[0005] This reaction can be expressed as a combination of anodic and cathodic half-cell reactions. Anode half-cell reaction: CuFeS2 → Cu 2+ +Fe 2+ +2S 0 +4e - Cathode half-cell reaction: 4Fe 3+ +4e - →4Fe 2+

[0006] The fundamental problem with chalcopyrite oxidation is that the surface of the chalcopyrite mineral becomes electrochemically difficult to yield above a certain level of solution potential (generally considered to be about 550 mV-600 mV vs. Ag / AgCl). This is widely known to be the result of the formation of a type of passivating film on the mineral surface, which is usually composed of an alternative, partially iron-depleted form of chalcopyrite. It would be desirable to provide a leaching method that reduces or avoids such passivation. Summary of the Invention [Problem to be solved by the invention]

[0007] Several methods have been implemented in extractive hydrometallurgy to recover precious metals such as gold or silver from chalcopyrite residues or copper concentrates after copper extraction. Deschenes and Ghali (Hydromy 20:129-202) demonstrated the feasibility of applying thiourea in the acidic silicate leaching of sulfide concentrates, such as chalcopyrite-bearing sulfide concentrates, to selectively recover gold and silver. Thiourea is an organosulfur compound with a thiocarbonyl functional group. However, thiourea was not effective in recovering copper from copper sulfide.

[0008] Leaching metals in the presence of halogens has also been extensively studied over the past few decades. The use of chlorides at high temperatures has been shown to achieve high copper recovery from chalcopyrite (Winand, Hydrometallurgy, 27: 285-316). Chloride leaching at room temperature has also been shown to be effective and therefore suitable for heap leaching (International Publication No. WO2015059551). Bromide leaching has primarily been studied for gold applications (Li et al. Proceedings of the 3rd Pan American Materials Congress, 2017: 653-660). However, several techniques have also been shown to be effective for extracting copper from sulfide ores (U.S. Patent Nos. 5,989,311 and 9,290,827). Iodide leaching has also been shown to be effective under a variety of conditions (U.S. Patent Nos. 5,989,311, 8,163,063, 8,287,623, and 8,865,119). [Means for solving the problem]

[0009] The present disclosure relates, at least in part, to the unexpected discovery that certain reagents containing thiocarbonyl functional groups (e.g., thiourea) can be used to enhance the leaching of metals (e.g., copper from chalcopyrite) from certain metal sulfides using acidic leach solutions, such as acidic sulfate or halide leach solutions. When added in small amounts, such reagents can increase the metal leaching rate relative to their absence.

[0010] The present disclosure relates to a method for recovering at least one metal from at least one metal sulfide in an ore, the method comprising the steps of contacting the ore with an acidic sulfate solution containing ferric sulfate and a reagent having a thiocarbonyl functional group to produce a pregnant solution containing metal ions, and recovering the at least one metal from the pregnant solution, wherein the at least one metal is copper, and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and ferrous iron ore with the chemical formula Cu x S yand wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is setothermite, violarite, or a combination thereof; nickel; or a combination thereof.

[0011] The present disclosure relates to a method for recovering at least one metal from at least one metal sulfide in a concentrate, the method comprising the steps of contacting the concentrate with an acidic sulfate solution containing a reagent having a thiocarbonyl functional group to produce a pregnant solution containing metal ions, and recovering the at least one metal from the pregnant solution, wherein the at least one metal is copper, and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and gallite, with the chemical formula Cu x S y and wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is pyrethrite, violarite, or a combination thereof; nickel; or a combination thereof.

[0012] The present disclosure relates to a method for recovering at least one metal from at least one metal sulfide in a material, the method comprising the steps of contacting the material with an acidic sulfate solution containing a reagent having a thiocarbonyl functional group to produce a pregnant liquor containing metal ions, and recovering the at least one metal from the pregnant liquor, wherein the at least one metal is copper, and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and gallite, which have the chemical formula Cu x S yand wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is setothermite, violarite, or a combination thereof; nickel; or a combination thereof.

[0013] The concentrate, ore, or other material may be coarse particles. The coarse particles may be agglomerated particles.

[0014] In the above-described methods, the concentration of the reagent in the acidic sulfate solution may be in the range of about 0.2 mM to about 100 mM, about 0.2 mM to about 20 mM, about 0.2 mM to about 10 mM, about 0.2 mM to about 5 mM, about 0.2 mM to about 4 mM, about 0.2 mM to about 3 mM, about 0.2 mM to about 2 mM, about 0.2 mM to about 1.5 mM, about 0.2 mM to about 1.0 mM, or about 0.2 mM to about 0.5 mM.

[0015] The metal has the formula Cu x S y and the x:y ratio is 1 to 2, the copper sulfide may include chalcocite, durrleite, digenite, or a combination thereof.

[0016] In the above-described methods, the reagent may be thiourea (Tu), ethylene thiourea (Etu), thioacetamide (TA), sodium-dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof.

[0017] The present disclosure further relates to a method for recovering at least one metal from at least one metal sulfide in an ore, the method comprising the steps of contacting the ore with an acidic sulfate solution comprising ferric sulfate and formamidine disulfide (FDS) to produce a pregnant solution containing metal ions, and recovering the metal from the pregnant solution, wherein the at least one metal is copper, and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and ferrous iron ore with the chemical formula Cu x S y and wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is pyrethrite, violarite, or a combination thereof; nickel; or a combination thereof.

[0018] The present disclosure further relates to a method for recovering at least one metal from at least one metal sulfide in a concentrate, the method comprising the steps of contacting the concentrate with an acidic sulfate solution comprising ferric sulfate and formamidine disulfide (FDS) to produce a pregnant solution containing metal ions; and recovering the metal from the pregnant solution, wherein the at least one metal is copper and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and ferrous iron ore with the chemical formula Cu x S y and wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is pyrethrite, violarite, or a combination thereof; nickel; or a combination thereof.

[0019] The present disclosure further relates to a method for recovering at least one metal from at least one metal sulfide in a material, the method comprising the steps of contacting the material with an acidic sulfate solution comprising ferric sulfate and formamidine disulfide (FDS) to produce a pregnant liquor containing metal ions, and recovering the metal from the pregnant liquor, wherein the at least one metal is copper and the at least one metal sulfide is selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and ferrous iron ore, the chemical formula Cu x S y and wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one metal sulfide is cadmium sulfide; cadmium; or nickel; and the at least one metal sulfide is pyrethrite, violarite, or a combination thereof; nickel; or a combination thereof.

[0020] The concentrate, ore, or other material may be coarse particles. The coarse particles may be agglomerated particles.

[0021] The concentration of FDS in the acidic sulfate solution may be in the range of about 0.1 mM to about 50 mM, about 0.1 mM to about 15 mM, about 0.1 mM to about 10 mM, about 0.2 mM to about 5 mM, about 0.1 mM to about 2.5 mM, about 0.1 mM to about 2 mM, about 0.1 mM to about 1.5 mM, about 0.1 mM to about 1.0 mM, about 0.1 mM to about 0.5 mM, or about 0.1 mM to about 0.25 mM. x S y In the case of copper sulfide having the formula: where the x:y ratio is 1 to 2, the copper sulfide may include chalcocite, durrleite, digenite, or a combination thereof.

[0022] The concentration of FDS in the acidic sulfate solution may be sufficient to provide sufficient thiourea to obtain a higher metal ion extraction rate compared to an acidic sulfate solution without the reagent, to produce a pregnant leach solution containing metal ions.

[0023] In the above-described method, the ore may be coarse particles, and the coarse particles may be agglomerated particles. Ferric ions may be used to oxidize the metal sulfides. In the above-described method, the ferric ions may be generated, at least in part, by bacteria.

[0024] The method may involve percolation leaching. The percolation leaching may be heap leaching. The percolation leaching may be vat leaching. The leaching may be tank leaching.

[0025] Recovery of metals from the pregnant leach solution may include solvent extraction and electrowinning.

[0026] In the above-described method, the acidic sulfate solution may contain halide ions. The halide ions may include chloride ions, bromide ions, iodide ions, or a combination thereof. The chloride concentration in the acidic sulfate solution may be about 20 g / L or less, about 50 g / L or less, about 80 g / L or less, about 20 g / L or less, about 20 g / L to about 120 g / L, about 20 g / L to about 80 g / L, or about 20 g / L to about 50 g / L. The iodide concentration in the acidic sulfate solution may be about 300 ppm or less, about 100 ppm or less, or about 100 ppm to about 300 ppm. The bromide concentration in the acidic sulfate solution may be about 10 g / L or less, about 30 g / L or less, or about 10 g / L to about 30 g / L.

[0027] The present disclosure further relates to the use of a reagent having a thiocarbonyl functional group to extract at least one base metal from at least one base metal sulfide in a material. The reagent may be, but is not necessarily limited to, thiourea (Tu), ethylenethiourea (ETu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof. The concentration of the reagent may be in the range of about 0.2 mM to 100 mM, or in the range of about 0.2 mM to about 30 mM.

[0028] Additionally, the present disclosure relates to the use of formamidine disulfide (FDS) to extract at least one base metal from at least one base metal sulfide contained in a material.

[0029] The concentration of the FDS may be in the range of about 0.1 mM to 50 mM, or in the range of about 0.1 mM to about 15 mM.

[0030] In the above-mentioned use, the at least one base metal may comprise copper, cadmium, nickel, or a combination thereof, and the at least one base metal sulfide may be selected from the group consisting of chalcopyrite, covellite, bornite, enargite, and sulphurite with the chemical formula Cu x S y and wherein the x:y ratio is between 1 and 2, or a combination thereof; copper; cadmium; and the at least one base metal sulfide is cadmium sulfite; cadmium; or nickel; and the at least one base metal sulfide is pyrethrite, violalite, or a combination thereof; nickel; or a combination thereof.

[0031] The material may be an ore or concentrate.

[0032] The above-described use may be carried out in the presence of halide ions. The halide ions may include chloride ions, bromide ions, iodide ions, or a combination thereof. The chloride concentration in the acidic sulfate solution may be about 20 g / L or less, about 50 g / L or less, about 80 g / L or less, about 20 g / L or less, about 20 g / L to about 120 g / L, about 20 g / L to about 80 g / L, or about 20 g / L to about 50 g / L. The iodide concentration in the acidic sulfate solution may be about 300 ppm or less, about 100 ppm or less, or about 100 ppm to about 300 ppm. The bromide concentration in the acidic sulfate solution may be about 10 g / L or less, about 30 g / L or less, or about 10 g / L to about 30 g / L.

[0033] The present disclosure further relates to a method for recovering a reagent having a thiocarbonyl functional group from an aqueous pregnant leach solution (PLS), the aqueous PLS comprising the reagent and base metal ions, some of the reagent complexed with the base metal ions, the method comprising the steps of combining the PLS with an organic solvent containing a base metal ion extractant to form a mixture, extracting the base metal ions from the PLS into the organic solvent, and separating the mixture into a base metal ion-depleted raffinate comprising the reagent and a base metal ion-enriched organic phase comprising the organic solvent and the base metal ions. Extracting the base metal ions from the PLS into the organic solvent may include separating the reagent from the base metal ions to increase the amount of free reagent in the raffinate relative to the PLS. The reagent may be thiourea (Tu), ethylenethiourea (ETu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof. The raffinate may further comprise formamidine disulfide (FDS), in which case the method may further comprise contacting the raffinate with a reducing agent to reduce FDS to Tu. The step of contacting the raffinate with a reducing agent to reduce FDS to Tu may comprise reducing FDS to obtain a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. The reducing agent may be HS, SO, or NaSH.

[0034] The present disclosure further relates to a method for recovering FDS from an aqueous pregnant leach solution (PLS), the aqueous PLS comprising the reagent and base metal ions, the method comprising the steps of combining PLS with an organic solvent containing a base metal ion extractant to form a mixture, extracting the base metal ions from the PLS into the organic solvent, and separating the mixture into a base metal ion-depleted raffinate comprising FDS and a base metal ion-enriched organic phase comprising the organic solvent and the base metal ions.

[0035] The base metal ions may include cadmium, nickel, copper, or a combination thereof.

[0036] The organic solvent may be an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may be kerosene, an alkyl aromatic compound, a cycloparaffin, or a combination thereof.

[0037] The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof. The base metal ion extractant may further include an ester modifier, an alkylphenol modifier, or a combination thereof.

[0038] The PLS may further contain Tu complexed with base metal ions, and the step of extracting the base metal ions from the PLS includes separating the Tu from the base metal ions to increase the amount of free Tu contained in the raffinate compared to the PLS.

[0039] The present disclosure further relates to a method for recovering at least one base metal from at least one base metal sulfide in a material containing at least one base metal sulfide, the method comprising the steps of: contacting the material with a lixiviant to extract base metal ions from the at least one base metal sulfide to produce a pregnant leach solution (PLS), the lixiviant comprising an acidic sulfate solution containing ferric sulfate and a reagent having a thiocarbonyl functional group; mixing the PLS with an organic solvent containing a base metal ion extractant to form a mixture; extracting base metal ions from the PLS into the organic solvent; and separating the mixture into a base metal ion-depleted raffinate comprising the reagent and a base metal ion-enriched organic phase comprising the organic solvent and base metal ions.

[0040] The step of extracting the base metal ions from the PLS into the organic solvent may include separating a reagent from the base metal ions to increase the amount of free reagent contained in the raffinate compared to the PLS. The reagent may be, but is not necessarily limited to, thiourea (Tu), ethylenethiourea (ETu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof. When the reagent includes Tu, the raffinate may further include formamidine disulfide (FDS), in which case the method further includes contacting the raffinate with a reducing agent to reduce FDS to Tu. The step of contacting the raffinate with a reducing agent to reduce FDS to Tu may include reducing FDS to obtain a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. The reducing agent may be HS, SO, or NaSH.

[0041] The present disclosure further relates to a method for recovering at least one base metal from at least one base metal sulfide in a material containing at least one base metal sulfide, the method comprising the steps of: contacting the material with a lixiviant to extract base metal ions from the at least one base metal sulfide to produce a pregnant leach solution (PLS), the lixiviant comprising an acidic sulfate solution containing ferric sulfate and formamidine disulfide (FDS); mixing the PLS with an organic solvent containing a base metal ion extractant to form a mixture; extracting base metal ions from the PLS into the organic solvent; and separating the mixture into a base metal ion-depleted raffinate comprising the reagent and a base metal ion-enriched organic phase comprising the organic solvent and base metal ions. The PLS may further include thiourea (Tu) complexed with a base metal ion, in which case extracting the base metal ion from the PLS includes separating Tu from the base metal ion to increase the amount of free Tu in the raffinate relative to the PLS. The method may further include contacting the raffinate with a reducing agent to reduce FDS to Tu. The contacting the raffinate with a reducing agent to reduce FDS to Tu may include reducing FDS to obtain a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. The reducing agent may be HS, SO, or NaSH.

[0042] The organic solvent may be an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may include kerosene, an alkylaromatic compound, a cycloparaffin, or a combination thereof. The base metal ions may include cadmium, nickel, or copper. The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof.

[0043] The base metal ions may include cadmium, nickel, copper, or a combination thereof.

[0044] The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof. Additionally, the base metal ion extractant may include an ester modifier, an alkylphenol modifier, or a combination thereof.

[0045] The leaching agent and / or the PLS may contain halide ions. The halide ions may include chloride ions, bromide ions, iodide ions, or a combination thereof. The chloride concentration in the leaching agent or PLS may be about 20 g / L or less, about 50 g / L or less, about 80 g / L or less, about 20 g / L or less, about 20 g / L to about 120 g / L, about 20 g / L to about 80 g / L, or in the range of about 20 g / L to about 50 g / L. The iodide concentration in the leaching agent or PLS may be about 300 ppm or less, about 100 ppm or less, or in the range of about 100 ppm to about 300 ppm. The bromide concentration in the leaching agent or PLS may be about 10 g / L or less, about 30 g / L or less, or in the range of about 10 g / L to about 30 g / L.

[0046] The method may further comprise the step of recycling a portion of the raffinate containing the reagent having a thiocarbonyl functional group to the lixiviant. The lixiviant containing a portion of the raffinate recycled from the solvent extraction may be supplemented with fresh reagent having a thiocarbonyl functional group to achieve a desired concentration of the reagent having a thiocarbonyl functional group in the lixiviant.

[0047] The present disclosure further relates to a method for recovering a reagent containing sequestered thiocarbonyl functional groups in a leachable material containing at least one base metal sulfide, the method comprising rinsing the leachable material with a wash solution containing base metal ions to produce a pregnant wash solution (PWS) containing the reagent. The method further comprises mixing the PWS with an organic solvent containing a base metal ion extractant to form a mixture; extracting base metal ions from the PWS into the organic solvent; and separating the mixture into a base metal ion-depleted solution containing the reagent and a base metal ion-enriched solution containing the organic solvent and base metal ions. Extracting base metal ions from the PWS into the organic solvent comprises dissociating the reagent from the base metal ions to increase the amount of free reagent contained in the base metal ion-depleted solution compared to the PWS. The organic solvent may comprise an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may comprise kerosene, an alkylaromatic compound, a cycloparaffin, or a combination thereof. The reagent may include, but is not necessarily limited to, thiourea (Tu), ethylenethiourea (ETu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof. When the reagent includes Tu, the base metal ion-depleted solution may further include FDS, in which case the method may further include contacting the base metal ion-depleted solution with a reducing agent to reduce FDS to Tu. Contacting the base metal ion-depleted solution with a reducing agent to reduce FDS to Tu includes reducing FDS to obtain a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. The reducing agent may be HS, SO, or NaSH.

[0048] The organic solvent may be an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may include kerosene, an alkylaromatic compound, a cycloparaffin, or a combination thereof. The base metal ions may include cadmium, nickel, or copper. The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof.

[0049] The base metal ions may include cadmium, nickel, copper, or a combination thereof.

[0050] The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof. The base metal ion extractant may further include an ester modifier, an alkylphenol modifier, or a combination thereof.

[0051] The concentration of base metal ions in the cleaning solution may be at least 100 ppm, at least 400 ppm, or at least 1,000 ppm.

[0052] The method may further include rinsing the leaching material with an acidic solution prior to rinsing the leaching material with a cleaning solution. The acidic solution may have a pH of about 1.8.

[0053] The present disclosure further relates to a method for recovering at least one base metal from a material containing at least one base metal sulfide, the method comprising: recovering a reagent containing thiocarbonyl functional groups sequestered in a leach material containing at least one base metal sulfide by the method described above; mixing the recovered reagent with an acidic sulfate solution containing ferric sulfate to form a leachant; and contacting the material with the leachant to extract base metal ions from the at least one base metal sulfide to produce a pregnant leach solution (PLS) containing base metal ions. The acidic sulfate solution prior to mixing with the recovered reagent may contain a pre-existing reagent, a pre-existing FDS, or a combination thereof, having a thiocarbonyl functional group. The pre-existing reagent may be thiourea (Tu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), thiosemicarbazide (TSCA), or a combination thereof. The method further includes the steps of mixing the PLS with an organic solvent containing a base metal ion extractant to form a mixture, extracting base metal ions from the PLS into the organic solvent, and separating the mixture into a base metal ion-depleted raffinate containing the reagent and a base metal ion-rich solution containing the organic solvent and base metal ions. Extracting the base metal ions from the PLS into the organic solvent includes separating the reagent from the base metal ions to increase the amount of free reagent in the raffinate relative to the PLS. When the reagent is Tu, the raffinate further contains FDS, and in this case, the method further includes contacting the raffinate with a reducing agent to reduce FDS to Tu. Contacting the raffinate with a reducing agent to reduce FDS to Tu may include reducing FDS to a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. The reducing agent may be HS, SO, or NaSH.

[0054] The organic solvent may be an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may include kerosene, an alkylaromatic compound, a cycloparaffin, or a combination thereof. The base metal ions may include cadmium, nickel, or copper. The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof.

[0055] The base metal ions may include cadmium, nickel, copper, or a combination thereof.

[0056] The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof. The base metal ion extractant may further include an ester modifier, an alkylphenol modifier, or a combination thereof.

[0057] The leaching agent and / or the PLS may contain halide ions. The halide ions may include chloride ions, bromide ions, iodide ions, or a combination thereof. The chloride concentration in the leaching agent or PLS may be about 20 g / L or less, about 50 g / L or less, about 80 g / L or less, about 20 g / L or less, about 20 g / L to about 120 g / L, about 20 g / L to about 80 g / L, or in the range of about 20 g / L to about 50 g / L. The iodide concentration in the leaching agent or PLS may be about 300 ppm or less, about 100 ppm or less, or in the range of about 100 ppm to about 300 ppm. The bromide concentration in the leaching agent or PLS may be about 10 g / L or less, about 30 g / L or less, or in the range of about 10 g / L to about 30 g / L.

[0058] Other aspects and features of the present invention will become apparent to those skilled in the art upon review of the following description of specific embodiments of the invention in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0059] The following drawings illustrate embodiments of the present invention. [Figure 1] FIG. 1 is a flow chart of recovery in a leaching method according to an embodiment of the present invention. [Figure 2] FIG. 2 is a flow chart of the recovery in a leaching process according to an embodiment of the invention, which includes a reduction step before recycling the raffinate to the leaching agent. [Figure 3] FIG. 3 is a plot showing the effect of thiourea concentration on the mixed potential and dissolution current density (idissol) of a CuFeS2 electrode. [Figure 4] FIG. 4 is a bar graph showing the electrochemical dissolution rate of a CuFeS2 electrode in sulfuric acid solution at pH 2 at 25 °C with varying initial concentrations of thiourea, formamidine disulfide (FDS), and Fe(III). [Figure 5] FIG. 5 is a schematic diagram of the leaching column used in connection with the leaching experiments associated with FIGS. [Figure 6] FIG. 6 is a graph showing the effect of thiourea concentration on copper leaching from Ore A in column leaching experiments. [Figure 7] FIG. 7 is a graph showing the effect of thiourea concentration on copper leaching from Ore B in column leaching experiments. [Figure 8] FIG. 8 is a graph showing the effect of thiourea concentration on copper leaching from Ore C in column leaching experiments. [Figure 9] FIG. 9 is a graph showing the effect of thiourea concentration on the leaching rate of copper from Ore C in a column leaching experiment. [Figure 10] FIG. 10 is a graph showing the effect of thiourea concentration on operating potential (ORP) over time. [Figure 11] FIG. 11 is a graph showing the effect of thiourea concentration on copper dissolution for crude ore A in a bottle roll experiment. [Figure 12] FIG. 12 is a graph showing the effect of thiourea concentration on copper dissolution for crude ore B in a bottle roll experiment. [Figure 13]Figure 13 is a graph showing the effect of Tu addition on various Cu(I)-containing minerals. Diamonds refer to bornite, triangles to covellite, inverted triangles to chalcocite, and squares to chalcopyrite. Open symbols represent control treatments without Tu, while filled symbols represent mineral-treated solutions with an initial Tu concentration of 2 mM. [Figure 14] FIG. 14 is a graph showing the effect of Tu on the extraction of cadmium from cadmium sulfite. [Figure 15] FIG. 15 is a graph showing the effect of Tu on copper extraction from enargite. [Figure 16] FIG. 16 is a graph showing the effect of Tu on the extraction of nickel from vioral ore. [Figure 17] FIG. 17 is a graph showing the percentage of Cu ions remaining in solution after adding various amounts of Tu. [Figure 18] FIG. 18 is a graph showing the extraction of Cu from chalcopyrite under various Tu dosages. [Figure 19] FIG. 19 is a graph showing Cu extraction versus Tu dose after 172 hours. [Figure 20] Figure 20 is a graph showing copper leaching from chalcopyrite in stirred reactor tests using reagents containing thiocarbonyl functional groups: circles for Tu, triangles for TA, inverted triangles for SDDC, diamonds for ETC, stars for TSCA, and squares for the control. [Figure 21] Figure 21 is a graph showing copper leaching from covellite in stirred reactor tests using reagents containing thiocarbonyl functional groups. Circles refer to Tu, triangles to TA, diamonds to SDDC, and squares to the control. [Figure 22] Figure 22 is a graph showing the leaching of copper from bornite in stirred reactor tests using reagents containing thiocarbonyl functional groups. Triangles refer to Tu, circles refer to TA, and squares refer to the control. [Figure 23]Figure 23 is a graph showing copper leaching from enargite in stirred reactor tests using reagents containing thiocarbonyl functional groups. Circles refer to Tu, triangles to TA, inverted triangles to ETC, and squares to the control. [Figure 24] Figure 24 is a graph showing copper leaching from chalcopyrite in stirred reactor tests using reagents containing thiocarbonyl functional groups, urea, and carbon disulfide. Circles refer to urea, triangles to the control, inverted triangles to TA, diamonds to Tu, stars to ETC, and squares to carbon disulfide. [Figure 25a] Figure 25a is a graph comparing the leaching of copper from chalcopyrite (circles) or bornite (triangles) using leach solutions with either an initial concentration of 2 mM Tu (filled symbols) or an initial concentration of 1 mM FDS (open symbols). [Figure 25b] Figure 25b is a graph comparing the leaching of copper from covellite (circles) or chalcopyrite (triangles) using leaching solutions with either an initial concentration of 2 mM Tu (filled symbols) or an initial concentration of 1 mM FDS (open symbols). [Figure 26] FIG. 26 is a graph of bacterial activity and FDS content monitored by ORP and high performance liquid chromatography (HPLC). [Figure 27] FIG. 27 is a graph showing the bioleaching of CuFeS2 with Fe3+ only (0-50 days) and with Fe3++Tu (90-150 days) in a closed-loop experiment. [Figure 28] FIG. 28 is a graph showing the results of leaching copper from chalcopyrite in the presence of Tu at varying chloride concentrations. [Figure 29] FIG. 29 is a graph showing the results of leaching copper from chalcopyrite in the presence of (a) Tu and (b) Etu at varying chloride concentrations. [Figure 30]FIG. 30 is a graph showing the results of leaching copper from chalcopyrite in the presence of (a) Tu and (b) Etu with varying bromide concentrations. [Figure 31] FIG. 31 is a graph showing the results of copper leaching from chalcopyrite with Tu or Etu in the presence of (a) 100 ppm iodine, and (b) 300 ppm iodine in a closed reactor. [Figure 32] FIG. 32 is a plot showing the concentration of iodine over time in a closed reactor at (a) 100 ppm iodine and (b) 300 ppm iodine, in the presence or absence of Tu and Etu. [Figure 33] FIG. 33 is a plot showing the concentration of iodine over time in an open reactor in the presence or absence of Tu. [Figure 34] FIG. 34 is a graph showing the results of leaching copper from chalcopyrite with Tu or Etu in the presence of (a) 100 ppm iodine and (b) 300 ppm iodine in an unsealed (i.e., open) reactor. [Figure 35] FIG. 35 is a plot showing the concentration of iodine over time in an unsealed (i.e., open) reactor at (a) 100 ppm iodine and (b) 300 ppm iodine, in the presence or absence of Tu and Etu. [Figure 36] FIG. 36 is a bar graph showing free Tu equivalents in the simulated PLS and simulated raffinate produced after solvent extraction. [Figure 37] FIG. 37 is a bar graph showing free Etu in simulated PLS and simulated raffinate produced after solvent extraction. [Figure 38] FIG. 38 is a graph showing the total thiourea concentration in the effluent over time for three ores during injection with a solution of 2 mM Tu equivalent concentration. [Figure 39] FIG. 39 is a graph showing the total thiourea equivalent concentration over time for the three ore samples shown in FIG. 38 during acid water washes. [Figure 40] FIG. 40 is a bar graph showing the Tu equivalents remaining in the columns of three ore samples after various treatments. DETAILED DESCRIPTION OF THE INVENTION

[0060] This disclosure relates to methods for recovering base metals from base metal sulfide minerals, and in particular to the unexpected discovery that various reagents containing thiocarbonyl functional groups, such as thiourea (also known as "Tu", thiocarbamide), can be used to enhance the leaching of base metals from base metal sulfides in various minerals using acidic sulfate leach solutions, even in the presence of halide species. These reagents can increase the leaching rate of metal sulfides.

[0061] A further aspect of the present disclosure relates to recovering reagents having thiocarbonyl functionality from the pregnant leach solution (PLS) for recycling to the leachate (i.e., leaching agent). Such recycling has the advantage of reducing the amount of fresh reagent that must be added to the leachate over time.

[0062] Those skilled in the art will appreciate that an equilibrium exists between Tu and formamidine disulfide (FDS) in solution. The equilibrium between Tu and FDS in solution is shown in the following equation: 2CS(NH2)2 ⇔ (CSNH2NH)2 + 2H + +2e - (reversible reaction) Thiourea ⇔ FDS + 2H + +2e - (reversible reaction)

[0063] Tu has a stronger effect on enhancing the leaching of base metals from materials containing base metal sulfides. For example, copper leaches faster from sulfide ores / concentrates in the presence of TU than in the presence of FDS or complexes of TU and Cu. Therefore, recycling a solution with higher free TU to the leachate would improve the leaching process. Accordingly, a particular embodiment of the present disclosure relates to adding a reducing agent to a raffinate containing Tu (Tu) and formamidine disulfide (FDS) to bias the equilibrium in favor of Tu before recycling to the leachate.

[0064] The present disclosure also relates to methods for recovering catalysts from spent leach materials. In particular, the present disclosure relates to recovering reagents having thiocarbonyl functional groups from base-metal-depleted leach materials containing base-metal sulfides from which the base metals have been leached.

[0065] As used herein, the term "base metal" refers to non-ferrous metals other than precious metals. The base metals may include copper, lead, nickel, and cadmium. Furthermore, the base metals may include zinc, aluminum, tin, tungsten, molybdenum, tantalum, cobalt, bismuth, cadmium, titanium, zirconium, antimony, manganese, beryllium, chromium, germanium, vanadium, gallium, hafnium, indium, niobium, rhenium, and thallium.

[0066] The method is particularly useful for recovering metals from low-grade ores containing low proportions of base metal sulfide minerals, and comprises contacting the base metal sulfide minerals with an acidic sulfate solution containing a reagent having a thiocarbonyl functionality.

[0067] Furthermore, those skilled in the art will understand that just because a reagent having a thiocarbonyl functionality is useful for extracting base metals from one metal sulfide or mineral containing that metal sulfide, it does not follow that said reagent will be useful for extracting that metal from other metal sulfides containing the same metal.

[0068] mineral Chalcopyrite (CuFeS2) Leaching of chalcopyrite is achieved in an acidic ferric sulfate solution according to the following reaction: CuFeS2+4Fe 3+ →Cu 2+ +5Fe 2+ +2S 0

[0069] Copper indigo (CuS) The leaching of covellite in ferric sulfate solution proceeds according to the following reaction: CuS+2Fe 3+ →Cu 2+ +2Fe 2+ +S 0

[0070] Chalcocite (Cu2S) The leaching of chalcocite in ferric iron solution proceeds according to the following reaction: Cu2S+2Fe 3+ →Cu 2+ +2Fe 2+ +CuS

[0071] Those skilled in the art will understand that the ore of "chalcocite" has the chemical formula Cu x S y It is understood that it often contains a mixture of minerals with an x:y ratio of 1 to 2. Additional minerals within this formula include digenite and durrleite.

[0072] Bornite (Cu5FeS4) Bornite is an important copper mineral that usually coexists with chalcopyrite. The leaching method of bornite in ferric iron solution is described in two steps: Cu5FeS4+4Fe 3+ →Cu3FeS4+2Cu 2+ +4Fe 2+ Cu3FeS4+8Fe 3+ →3Cu 2+ +9Fe 2+ +4S 0

[0073] Arsenicite (Cu3AsS4) Unlike the other copper minerals mentioned above (chalcopyrite, covellite, chalcocite, and bornite), the copper in enargite is primarily Cu(II) instead of Cu(I). The difference in the oxidation state of copper affects the leaching reaction rate under catalytic conditions. Previous studies have shown that leaching of enargite at atmospheric pressure is extremely slow. The decomposition process of enargite in ferric sulfate solvent varies; two of them are shown below. Cu3AsS4+20H2O+35Fe 3+ →3Cu 2+ +AsO4 3- +4SO4 2- +40H + +35Fe 2+ Cu3AsS4+4H2O+11Fe 3+ →3Cu 2+ +AsO4 3- +4S 0 +8H + +11Fe 2+

[0074] Cadmium sulfide (CdS) Cadmium metal and compounds are primarily used in alloys, coatings, batteries, and plastic stabilizers. There are no dedicated cadmium deposits. Cadmium sulfide is usually combined with zinc sulfide and recovered as a by-product of zinc leaching from roasted sulfide concentrates.

[0075] Vioralite (FeNi2S4) Violalite is a nickel(III) sulfide mineral that usually accompanies primary nickel sulfide ores.

[0076] reagent Those skilled in the art will understand that any compound having a thiocarbonyl functionality can potentially be used in accordance with the techniques described herein, and will also understand that reagents having a thiocarbonyl functionality include, but are not limited to, Tu, ethylenethiourea (ETu), thioacetamide (TA), sodium dimethyldithiocarbamate (SDDC), ethylene trithiocarbonate (ETC), and thiosemicarbazide (TSCA).

[0077] Further compounds having a thiocarbonyl functionality include, but are not limited to, isothiourea, N-N'-substituted thioureas, of which Etu (also known as 2-thioxoimidazolidine or N,N'-ethylenethiourea) is an example, 2,5-dithiobiurea, dithiobiuret, thiosemicarbazide, thiosemicarbazide, methyl chlorothionoformate, dithiooxamide, thioacetamide, 2-methyl-3-thiosemicarbazide, 4-methyl-3-thiosemicarbazide, vinylene trithiocarbonate, vinylene trithiocarbonate, 2-cyanothioacetamide, ethylene trithiocarbonate, potassium ethyl xanthate, and dimethylthiocarbamoyl chloride. , Dimethyldithiocarbamate, S,S'-dimethyl dithiocarbonate, Dimethyltrithiocarbonate, N,N'-dimethylthioformamide, 4,4-dimethyl-3-thiosemicarbazide, 4-ethyl-3-thiosemicarbazide, O-isopropylxanthate, Ethyl thiooxamate, Ethyl dithioacetate, Pyrazine-2-thiocarboxamide, Diethylthiocarbamoyl chloride, Diethyldithiocarbamate, Tetramethylthiuram monosulfide, Tetramethylthiuram disulfide, Pentafluorophenyl chlorothionoformate, 4-fluorophenyl chlorothionoformate, O-phenyl chlorothionoformate, O-phenyl chlorothionoformate, Phenyl chlorodithionoformate, 3,4-Difluorothiobenzamide, 2-bromothiobenzamide, 3-bromothiobenzamide, 4-bromothiobenzamide, 4-chlorothiobenzamide, 4-fluorothiobenzamide, thiobenzoic acid, thiobenzamide, 4-phenylthiosemicarbazide, O-(p-tolyl)chlorothionoformic acid, 4-bromo-2-methylthiobenzamide, 3-methoxythiobenzthioamide, 4-methoxythiobenzamide, 4-methylbenzenethioamide, thioacetanilide, salicylaldehyde thiosemicarbazone, indole-3-thiocarboxamide, S-(thiobenzoyl)thioglycolic acid, 3-(acetoxy)thiobenzamide, 4-(acetoxy)thiobenzamide, N'-[(e)-(4-chlorophenyl)methylidene]hydrazonothiocarbamate methyl ester, 3-ethoxythiobenzamide, 4-ethylbenzene-1- Thiocarboxamide, tert-butyl 3-[(methylsulfonyl)oxy]-1-azetancarboxylate, diethyldithiocarbamic acid, 2-(phenylcarbonothioylthio)propanoic acid, 2-hydroxybenzaldehyde, N-ethyl thiosemicarbazone, (1R,4R)-1,7,7-trimethylbicyclo[2.2.1]heptane-2-thione, tetraethylthiuram disulfide, tetraethylthiuram disulfide, 4'-hydroxybiphenyl-4-thiocarboxamide, 4-biphenylthioamide, dithizone, 4'-methylbiphenyl-4-thiocarboxamide, tetraisopropylthiuram disulfide, anthracene-9-thiocarboxamide, phenanthrene-9-thiocarboxamide, sodium dibenzyldithiocarbamate, and 4,4'-bis(dimethylamino)thiobenzophenone. These reagents are readily available, for example, from Sigma-Aldrich.

[0078] Each of Tu, Etu, TA, SDDC, ETC, and TSCA has 1) a partial negative charge, 2) a negative electrostatic potential surface, and 3) an empty π as the lowest unoccupied molecular orbital (LUMO). *The ore is characterized by a sulfur-containing thiocarbonyl functional group with an antibonding orbital. Therefore, one skilled in the art can reasonably predict that other reagents, including the additional reagents described above, that meet these criteria and have sufficient water solubility will be useful in practicing the methods disclosed herein (provided that these reagents do not complex with the metal or iron oxidizing agent to form a precipitate). It is within the skill of the art to identify potentially useful reagents and conduct tests on them to determine their effectiveness with any particular ore.

[0079] For example, Tu has a partial charge of -0.371 calculated using the software Gaussian09, a negative electrostatic potential around the sulfur, and a LUMO of π * Tu contains a sulfur-containing thiocarbonyl functional group with an antibonding orbital, so it meets all three criteria and has demonstrated catalytic activity.

[0080] TA has a similar structure to Tu, but has a CH3 side chain instead of an NH2. TA has a partial charge of -0.305 calculated using the software Gaussian09, which is slightly smaller than that of Tu, a negative electrostatic potential around the sulfur, and a LUMO of π. * TA also has a sulfur-containing thiocarbonyl functional group with an antibonding orbital, and therefore meets all three criteria and has demonstrated catalytic efficacy.

[0081] Unlike Tu and TA, ETC does not contain a thioamide group. ETC has a thiocarbonyl functional group with two sulfur atoms σ-bonded to the carbon as a side chain. The sulfur of the thiocarbonyl functional group has a partial charge of −0.122 calculated using the software Gaussian09, which is much smaller than that of Tu. ETC has a negative electrostatic potential around the sulfur and a LUMO of π. * The ETC also has antibonding orbitals, and therefore meets all three criteria and has demonstrated catalytic activity.

[0082] By comparison, urea has a carbonyl functional group with a C=O bond instead of a C=S bond. The oxygen in the C=O bond has a negative electrostatic potential around it, with a partial charge of -0.634 calculated using the software Gaussian09. In this respect, it is very similar to the sulfur in Tu. However, its LUMO is π * It does not contain antibonding orbitals, and therefore urea is not expected to have a catalytic effect on metal leaching.

[0083] Carbon disulfide (CS2) contains two thiocarbonyl functional groups. The sulfur atom in each functional group has its LUMO at π. * Although it contains an antibonding orbital, the sulfur atom has a positive partial charge of +0.012 calculated using the software Gaussian 09. Therefore, CS2 is predicted to have no catalytic effect.

[0084] Of course, the reagent should also be water-soluble: ETC, for example, is poorly soluble in water, which explains why ETC is less effective than Tu at leaching copper from chalcopyrite.

[0085] The reagent is Fe 2+ / Fe 3+ It is preferable that TSCA does not form complexes / precipitates with ions. For example, TSCA does not form complexes / precipitates with Fe present in solution. 3+ This explains why TSCA is less effective than Tu in leaching copper from chalcopyrite.

[0086] The reagent is Cu + , Cu 2+ , Cd 2+ , or Ni 2+ Dithiooxamide forms an insoluble complex with copper ions and therefore cannot be used to leach copper sulfide minerals. On the other hand, TA does not leach Cd 2+It cannot be used to leach cadmium sulfide minerals such as cadmium sulfite because it forms insoluble complexes with ions.

[0087] Those skilled in the art will also recognize that not all compounds having a thiocarbonyl functional group are useful for enhancing metal extraction from metal sulfides. Furthermore, those skilled in the art will recognize that a reagent that functions to enhance metal extraction from one metal sulfide may not be useful for enhancing metal extraction from another, different metal sulfide. It is also within the skill of those in the art to identify potentially useful reagents and perform tests on them to determine their effectiveness with any particular ore, concentrate, or other material, if any.

[0088] [Formamidine disulfide (FDS)] Formamidine disulfide (FDS) is produced by the oxidation of Tu. In the presence of an oxidizing agent such as ferric sulfate, Tu is partially oxidized to formamidine disulfide (FDS) according to the following half-cell reaction: 2SC(NH2)2 → [(NH2)2CS]2 2+ +2e -

[0089] FDS does not contain a thiocarbonyl functional group, but instead contains a sigma bond between sulfur and sulfur. An equilibrium exists between FDS and Tu in ferric sulfate solution, such that a leachate prepared with FDS but not Tu yields the Tu necessary for catalysis of metal sulfide leaching. That is, a molecule of FDS decomposes into two Tu molecules upon decomposition in ferric sulfate leachate. Therefore, leachates using Tu as a reagent with a thiocarbonyl functional group can be effectively prepared using either Tu or FDS.

[0090] Those skilled in the art will understand that this equilibrium may cause the concentration of Tu (and FDS) to fluctuate over time. Thus, as used herein, "concentration" or "Tu equivalent" refers to the concentration of Tu in the leachate and relates to the amount of Tu present in the solution if all FDS in the solution were degraded to Tu (i.e., ignoring interconversion between the two forms). Similarly, as used herein, "concentration" referring to the concentration of FDS in the leachate relates to the amount of FDS present in the solution if all Tu in the solution were converted to FDS (i.e., ignoring interconversion between the two forms).

[0091] As used herein, the term "initial concentration" refers to the initial concentration of a reagent at the time the leach solution is applied to the ore sample. However, those skilled in the art will understand that the concentration of a reagent may decrease over time (e.g., through precipitation or corrosion) as the solution leaches through a column or heap. Thus, those skilled in the art will recognize that the methods disclosed herein function to enhance metal extraction from metal sulfides, provided that the concentration of the reagent is within an appropriate range during partial precipitation through the ore. Thus, "contacting" a material (e.g., an ore, concentrate, or other material containing base metal sulfides), as used herein, refers to contacting the material at any time during the leaching process. More specifically, "contacting" is not limited to the initial act of applying a leaching agent and / or reagent to the material to be leached, but includes contact with the leaching agent and / or reagent at any time during the leaching process.

[0092] In the presence of yellow FDS and ferric sulfate (or other suitable oxidizing agent), anodic dissolution of copper sulfide minerals such as chalcopyrite proceeds according to the following two reactions, with oxidation of the chalcopyrite by FDS or ferric sulfate, respectively: CuFeS2(s)+2[(NH2)2CS]2SO4(aq)→CuSO4(aq)+FeSO4(aq)+2S 0 (s)+4SC(NH2)2(aq) CuFeS2(s)+2Fe2(SO4)3(a)→CuSO4(a)+5FeSO4(a)+2S 0 (s)

[0093] After oxidizing the chalcopyrite and leaching the copper from the concentrate, it is desirable to recover the copper from the pregnant leach solution.

[0094] The methods disclosed herein involve two basic steps: leaching and metal recovery, e.g., solvent extraction (SX) and electrowinning (EW), collectively referred to as SX-EW. The leaching process may be carried out as a percolation leach (e.g., heap leach), vat leach, or tank leach, as is well known in the art.

[0095] For purposes of this disclosure, the terms "comprise" and "include" are used in an open-ended sense to mean including the items that follow these terms, but not excluding items not specifically mentioned. The reference to an element with the indefinite article "a" does not exclude the possibility of a plurality of elements being present, unless the context clearly requires one element and only one of a plurality of elements.

[0096] "Percolation leaching," as used herein, refers to the percolation of a suitable solvent through a block or pile of material containing desired soluble minerals to selectively remove the minerals, for example, column leaching or heap leaching.

[0097] "Column leaching," as used herein, means leaching carried out using an elongated column in which the ore sample is in contact with the solution to measure the effects of typical variations that occur in actual heap leaching.

[0098] "Heap leaching," as used herein, is a method of extracting metals from the ore in which they are found, i.e., without beneficiation. Heap leaching is often chosen for its efficiency and cost-effectiveness. After the ore is removed from the mound, it is typically sent to a crusher to be broken down into smaller particles. (Heap ore, however, can be "as-mined," meaning that the ore has been leached in a "blasted" state without further crushing.) Heap ore can be the product of primary, secondary, or tertiary crushing. Traditionally, the crushed particles are then "heaped" or "stacked" to form a large pile.

[0099] A persistent cause of heap leaching failure is the presence of excessive fines in the material placed on the pad. Excessive fines result in a material with low permeability, which results in either very slow leaching agent penetration or insufficient contact between the ore and the solution in an economical pad operation. Therefore, the efficiency of heap leaching is improved by agglomeration after comminution. "Agglomeration," as used herein, refers to the technique of combining material fines or particles to produce a larger product. Agglomeration can be performed by different methods well known in the art. Typically, heap leaching agglomeration is performed in a drum agglomerator using sulfuric acid without a binder, or on a conveyor belt by spraying acid onto the ore at the drop point.

[0100] The heap is washed with a solution appropriate to the type of ore being extracted. Acid for the leach solution is preferably bacterially generated using methods well known in the art, or additional acid can be added as needed.

[0101] The washed solution is allowed to percolate through the ore and drain to the bottom of the heap. A pile of ore is placed across an impermeable layer, such as plastic sheeting, which collects the pregnant leach solution as it drains through the layer and flows toward a collection pond. Once collected, the solution is pumped to a recovery plant where the copper is extracted by solvent extraction and electrowinning (SX-EW).

[0102] When the method disclosed herein is applied to heap leaching, ores containing suitable sulfide minerals are selectively leached in the presence of a reagent having a thiocarbonyl functional group and an acidic sulfate salt. The concentration of the reagent having a thiocarbonyl functional group in the leach solution may be about 30 mM or greater. Those skilled in the art will appreciate that the reagent concentration may be within a range sufficient to enhance the leaching rate of metal sulfides.

[0103] Furthermore, while reagent concentrations of about 100 mM or less are sufficient to facilitate leaching of metals from certain metal sulfides, 100 mM may not be economically feasible at this time. Thus, it is preferable to use lower concentrations of reagent, preferably those that are economically and operationally feasible, such as about 90 mM or less, about 80 mM or less, about 70 mM or less, about 60 mM or less, about 50 mM or less, about 40 mM or less, about 30 mM or less, about 20 mM or less, about 10 mM or less, about 5 mM or less, about 4 mM or less, about 3 mM or less, about 2 mM or less, about 1.5 mM or less, about 1 mM or less, about 0.9 mM or less, about 0.8 mM or less, about 0.7 mM or less, about 0.6 mM or less, about 0.5 mM or less, about 0.4 mM or less, about 0.3 mM or less, or about 0.2 mM or less.

[0104] Therefore, the concentrations of the reagents in the acid sulfate are about 0.2 mM to about 0.3 mM, about 0.2 mM to about 0.4 mM, about 0.2 mM to about 0.5 mM, about 0.2 mM to about 0.6 mM, about 0.2 mM to about 0.7 mM, about 0.2 mM to about 0.8 mM, about 0.2 mM to about 0.9 mM, about 0.2 mM to about 1.0 mM, about 0.2 mM to about 1.5 mM, about 0.2 mM to about 2.0 mM, about 0.2 mM to about 2.5 mM, about 0. It may be within the range of 2 mM to about 3 mM, about 0.2 mM to about 4 mM, about 0.2 mM to about 5 mM, about 0.2 mM to about 10 mM, about 0.2 mM to about 20 mM, about 0.2 mM to about 30 mM, about 0.2 mM to about 40 mM, about 0.2 mM to about 50 mM, about 0.2 mM to about 60 mM, about 0.2 mM to about 70 mM, about 0.2 mM to about 80 mM, about 0.2 mM to about 90 mM, or about 0.2 mM to about 100 mM.

[0105] The leaching process may be carried out at temperatures between 0° C. (i.e., the freezing point of water) and 80° C. However, the process is usually carried out at ambient temperature and atmospheric pressure.

[0106] In some circumstances, it may be necessary or desirable to leach using a halide-containing leachant. The halide may include chloride, bromide, or iodide. For example, it may be necessary to leach using brackish water, seawater, or salt water. Thus, the leaching methods disclosed herein may be carried out using a leach solution containing chloride at a concentration of as little as 120 g / L. The chloride concentration in the acidic sulfate solution may be in the range of about 1 g / L to about 10 g / L, about 1 g / L to about 20 g / L, about 1 g / L to about 30 g / L, about 1 g / L to about 40 g / L, about 1 g / L to about 50 g / L, about 1 g / L to about 60 g / L, about 1 g / L to about 700 g / L, about 1 g / L to about 80 g / L, about 1 g / L to about 120 g / L, about 1 g / L to about 90 g / L, about 1 g / L to about 100 g / L, about 1 g / L to about 110 g / L, or about 1 g / L to about 120 g / L. In specific embodiments, the chloride concentration in the acidic sulfate solution is in the range of about 20 g / L to about 120 g / L, 20 g / L to about 80 g / L, or 20 g / L to about 50 g / L.

[0107] Alternatively, the leaching methods disclosed herein may be carried out using a leach solution containing bromide at a concentration of about 30 g / L. The bromide concentration in the acidic sulfate solution may range from about 1 g / L to about 10 g / L, from about 1 g / L to about 20 g / L, or from about 1 g / L to about 30 g / L. In specific embodiments, the chloride concentration in the acidic sulfate solution ranges from about 10 g / L to about 30 g / L.

[0108] Alternatively, the leaching methods disclosed herein may be carried out using a leaching solution containing iodide at a concentration of about 300 ppm. The chloride concentration in the acidic sulfate solution may be from about 1 g / L to about 10 ppm, from about 1 ppm to about 20 ppm, from about 1 ppm to about 30 ppm, from about 1 ppm to about 40 ppm, from about 1 ppm to about 50 ppm, from about 1 ppm to about 60 ppm, from about 1 ppm to about 70 ppm, from about 1 ppm to about 80 ppm, from about 1 ppm to about 90 ppm, from about 1 ppm to about 100 ppm, from about 1 ppm to about 110 ppm, from about 1 ppm to about 120 ppm, from about 1 ppm to about 130 ppm, from about 1 ppm to about 140 ppm, from about 1 ppm to about 150 ppm, or from about 1 ppm to about 160 ppm. The chloride concentration in the acidic sulfate solution may be in the range of about 100 ppm to about 300 ppm.

[0109] solvent extraction Copper can be extracted from the leach solution according to the above leaching method. After solid-liquid separation, i.e., after discharging the copper-containing pregnant leach solution from the heap, the pregnant solution is preferably subjected to conventional solvent extraction and electrowinning to produce pure copper cathodes according to the following overall reaction: SX-EW:CuSO4(a)+H2O(l)→Cu(s)+H2SO4(a)+1 / 2O2(g)

[0110] The thiocarbonyl functional reagents in the pregnant leach solution do not pose problems in electrowinning operations and are, of course, also useful as leveling agents. The Tu-containing raffinate may then be recycled to the heap for further leaching. The recycled leach solution may be supplemented with Tu to achieve the desired initial Tu concentration for leaching.

[0111] PLS recovered from heap leaching contains iron and copper ions. It is known that reagents containing thiocarbonyl functional groups can form various stable complexes with copper ions (Doona and Stanbury, Inorg Chem 35:3210-3216; Mironov and Tsvelodub, J Solution Chem 25:315-325; Bowmaker et al., Inorg Chem 48:350-368). Extractants commonly used in copper solvent extraction (SX), such as hydroxyoximes and aldoximes, are strong complexing agents for copper ions. Solvent extractants can alter the equilibrium between copper ions and the thiocarbonyl ligands, separating the thiocarbonyl ligands from the copper complexes. Once the free thiocarbonyl ligands enter the raffinate solution, they can be collected in the heap and continue to catalyze leaching.

[0112] Therefore, the PLS recovered from leaching by solid-liquid separation is then mixed with an organic solvent containing a base metal ion extractant to form a mixture. Those skilled in the art can select an appropriate solvent depending on the metal ions to be extracted. The organic solvent may be an aliphatic solvent, an aromatic solvent, or a combination thereof. The organic solvent may include kerosene, an alkyl aromatic compound, a cycloparaffin, or a combination thereof.

[0113] Those skilled in the art will be able to select an appropriate extractant. The base metal ion extractant may be an aldoxime, a ketoxime, or a combination thereof. The base metal ion extractant may further include an ester modifier, an alkylphenol modifier, or a combination thereof.

[0114] During the solvent extraction, base metal cations are separated from the reagent, thereby liberating the reagent and allowing it to be extracted from the PLS into the organic solvent. The free reagent remains in the aqueous phase. Separation of the organic solvent from the aqueous phase results in a base metal ion-depleted raffinate containing the free reagent, and a base metal ion-rich organic phase containing the organic solvent and base metal ions.

[0115] The base metal ion rich solution may then be treated to recover the base metals, while the raffinate may be recycled for use in a lixiviant.

[0116] Halides such as chloride, bromide, or iodide present in the PLS at concentrations as described above can be used to retain the free reagent in the aqueous phase during solvent extraction to produce a raffinate containing the free reagent.

[0117] As noted above, those skilled in the art will appreciate that an equilibrium exists between Tu and FDS, resulting in a higher ratio of FDS and TU / Cu complexes to Tu in the PLS than in the leaching agent. Because Tu has a stronger effect on enhancing the leaching of base metals from sulfide ores / concentrates than FDS or TU / Cu complexes, the leaching process may be enhanced by increasing the proportion of free Tu in the raffinate, for example, by separating Tu from the base metal ions in the PLS or by adding a reducing agent to bias the equilibrium in favor of Tu, before recycling to leaching.

[0118] FIG. 5 illustrates a method for recovering base metals from base metal sulfides, generally designated 500. The method begins by contacting a material containing at least one base metal sulfide, such as an ore or concentrate, with a leaching agent. The leaching agent, as described above, includes an acidic sulfate solution and a reagent having thiocarbonyl functionality to extract base metal ions from the at least one base metal sulfide to produce a pregnant leach solution (PLS) containing the reagent and the base metal ions. A portion of the reagent complexes with the base metal ions. Leaching can be carried out in a reactor (i.e., a reactor vessel) or in a reactor-less heap.

[0119] See Figure 6. In certain embodiments using Tu as a reagent, the raffinate is mixed with a reducing agent before being returned to leaching to bias the equilibrium between FDS and Tu in favor of Tu. One skilled in the art would be able to select an appropriate reducing agent. For example, the reducing agent may be HS, NaSH, or zinc. The reducing agent may be added to achieve a Tu:FDS ratio ranging from about 0.5:1 to about 9:1. [Example]

[0120] To facilitate the extraction of metal ions from the minerals listed above, reagents containing thiocarbonyl functional groups were added to acidic ferric sulfate solutions as catalysts. In the experiments disclosed herein, reagents containing thiocarbonyl functional groups were found to have catalytic effects on mineral extraction. Among all the reagents listed above, Tu consistently demonstrated the highest catalytic performance. Therefore, among the reagents identified, Tu was the primary focus of our investigation. However, we also present experimental results for other reagents containing thiocarbonyl functional groups to compare their catalytic effects. FDS, which does not contain thiocarbonyl functional groups but has catalytic effects comparable to Tu, was studied as a special case due to its equilibrium with Tu. Leaching reactions were carried out at atmospheric pressure under various ore compositions, reagent concentrations, ferric iron concentrations, and various other conditions, as described below.

[0121] Example 1: Extraction of copper from chalcopyrite using thiourea Example 1.1 The effect of Tu on the electrochemical behavior of a chalcopyrite electrode was studied in a conventional three-electrode glass-jacketed cell. A CuFeS2 electrode was used as the working electrode, a saturated calomel electrode (SCE) as the reference electrode, and a graphite rod as the counter electrode. The CuFeS2 electrode was polished with 600- and 1200-grit carbide paper. All experiments were performed at 25°C using a temperature-controlled water bath. The electrolyte composition was 500 mM H2SO4, 20 mM Fe2SO4, and 0–100 mM Tu. Before starting the measurements, the solution was bubbled with N2 for 30 min to reduce the concentration of dissolved O2. The open-circuit potential (OCP) was recorded until the observed change was less than 0.1 mV / min. After the observed OCP value became constant, electrochemical impedance spectroscopy (EIS) was performed at the OCP using a 5 mV AC current sinusoidally perturbed from 10 kHz to 10 mHz, and linear polarization resistance (LPR) tests were performed at ±15 mV from the OCP with a scan rate of 0.05 mV / s.

[0122] Linear potential scans were performed at electrode potentials of ±15 mV from the OCP measured at each Tu concentration. All scans showed linear behavior within the analyzed electrode potential range. An increase in the slope of the experimental plots was observed with increasing Tu concentration. The slope of these curves was calculated as the polarization resistance (R ct These values ​​were then used to estimate values ​​of the dissolution current density using Equation 1.

[0123]

number

[0124] Figure 3 shows the effect of Tu on the mixed potential and dissolution current density of the CuFeS2 electrode. It also shows that the maximum dissolution current density was obtained at a Tu concentration of 30 mM. Increasing the Tu concentration to 100 mM resulted in a decrease in the current density and mixed potential of the CuFeS2 electrode. Furthermore, after immersion of the CuFeS2 electrode in a 100 mM Tu solution, a copper-like film was observed on the electrode surface. This film could only be removed by polishing the electrode with carbide paper.

[0125] Example 1.2 Figure 4 is a bar graph showing the effect of initial Tu or FDS concentration on the electrochemical dissolution of a chalcopyrite electrode in sulfuric acid solution at pH 2 and 25°C. A 10 mM Tu concentration in the leachate resulted in a 6-fold increase in dissolution rate compared to the absence of Tu, and a 5 mM FDS concentration resulted in a 6-fold increase in dissolution rate compared to 10 mM Tu. A 10 mM Tu concentration in a leachate that also contained 40 mM Fe(III) resulted in a 30-fold increase in dissolution rate compared to 40 mM Fe(III) alone.

[0126] Example 1.3 Column leaching of different acid-treated copper ores was carried out with Tu added to the leachate. Figure 5 shows a schematic of the column setup. The column diameter was 8.84 cm, the column height was 21.6 cm, and the column stack height was 15.9 cm. The water injection rate was 0.77 mL / min, or 8 L / m. 2 / h. The pregnant leach solution leaving the column was sampled for copper by atomic absorption spectroscopy (AAS) every 2 or 3 days.

[0127] Table 1 shows the specific mineralogical compositions of these ores. The Cu contents of Ore A, Ore B, and Ore C were 0.52%, 1.03%, and 1.22% w / w, respectively. Prior to leaching, the ores were "acid treated" to neutralize the acid consumers present in the ore. That is, the ore was mixed with a concentrated sulfuric acid solution containing 80% concentrated sulfuric acid and 20% deionized water and allowed to stand for 72 hours. In one treatment with Ore C, Tu was added to the sulfuric acid treatment solution.

[0128] The initial composition of the leachate was 2.2 g / L Fe (i.e., 40 mM as ferric sulfate) and pH 2 for the control experiment, and contained 0.76 g / L Tu (i.e., 10 mM) or no Tu. The initial mineral loading in each column was 1.6 kg to 1.8 kg of ore. The superficial velocity of the solution passing through the ore column was 7.4 L / min. -2 h -1 The pH was adjusted using diluted sulfuric acid. The two columns were maintained in an open loop or open cycle configuration (i.e., no solution recycle) for the entire leaching time.

[0129] Figures 6, 7, and 8 show the results of leaching tests for ores A, B, and C, respectively. The presence of Tu in the leaching agent clearly has a positive effect on copper leaching from chalcopyrite. On average, the leaching rate in the presence of Tu increased by a factor of 1.5–2.4 compared to control tests in which the leachate did not contain Tu. At the end of the time points shown in Figures 6–8, the copper extraction results for columns containing ores A, B, and C, which were leached with a solution containing sulfuric acid and ferric sulfate without added Tu, were 21.2% (after 198 days), 12.4% (after 50 days), and 40.6% (after 322 days), respectively. With the addition of 10 mM Tu, the extraction results were 37.9%, 32.0%, and 72.3%, respectively.

[0130] See Figure 8. Addition of 2 mM Tu to the originally Tu-free leachate from day 322 onward resulted in a rapid increase in leaching rate. From day 332 to day 448, the copper leached from this column increased from 40% to 58%, and rapid leaching was maintained throughout that period.

[0131] As shown in Figure 9, averaged over the last 7 days, the leaching rate for acid-treated ore C leached in the presence of 10 mM Tu is 3.3 times higher than the leaching rate for acid-treated ore C leached in the absence of Tu, and 4.0 times higher than the leaching rate for acid-treated and Tu-treated ore C leached in the absence of Tu.

[0132] Figure 10 shows the effect of Tu on solution potential. All potentials are reported relative to a Ag / AgCl (saturated) reference electrode. The solution potentials of leachates containing Tu were generally between 75 mV and 100 mV, lower than those of leachates without Tu. The lower solution potentials are consistent with Tu preventing passivation of chalcopyrite.

[0133] Example 1.4 Bottle Roll Percolation "Bottle roll" leaching experiments were conducted on coarse ore A and coarse ore B in the presence of various concentrations of Tu. Tests were performed using coarsely crushed mineral (100% passing 1 / 2 inch).

[0134] The ore was treated prior to leaching using a procedure similar to that followed for the ore used in the column leaching experiments. The ore was mixed with a concentrated sulfuric acid solution containing 80% concentrated sulfuric acid and 20% deionized water and allowed to stand for 72 hours to neutralize any acid-consuming materials present in the ore. In some experiments, different concentrations of Tu were added to the ore using the sulfuric acid treatment solution.

[0135] The bottles used in the experiment were 20 cm long and 12.5 cm in diameter. Each bottle was filled with 180 g of treated ore and 420 g of leachate, filling the bottle to approximately one-third of its volume.

[0136] Leachate from each bottle was sampled at 2, 4, 6, and 8 hours, and then every 24 hours, and the copper content of the samples was analyzed by atomic absorption spectroscopy (AAS).

[0137] The conditions for the bottle roll experiment are shown in Table 2. Experiments #1 to #6 were conducted with Tu added to the bottle only at the beginning. In Experiments #7 to #11, Tu was added every 24 hours to restore the Tu concentration.

[0138] Tu was observed to have a positive effect on copper leaching. In the coarse ore experiments, a plateau was not observed until 80 to 120 hours had elapsed. Periodic addition of Tu in the coarse ore experiments resulted in a favorable copper dissolution rate.

[0139] Figures 11 and 10 show the effect of different concentrations of Tu in the leachate on the leaching of crude ore (Experiments #1 to #11 shown in Table 2).

[0140] For Ore B, Tu was added periodically every 24 hours to restore the thiourea concentration in the system, thereby better mimicking the conditions in the column leaching experiments. As can be seen in Figure 9, 8 mM and 10 mM Tu resulted in higher copper dissolution rates than the other concentrations of Tu tested for Ore A. A plateau in dissolution was not observed until approximately 120 hours had elapsed and varied with Tu concentration, as shown in Figure 11.

[0141] [Table 1]

[0142] As can be seen in Figure 12, 5 mM Tu resulted in a higher copper dissolution rate than the other concentrations of Tu tested on Ore B. For Ore A, a plateau in dissolution was not observed until approximately 80 to 120 hours had elapsed and varied with Tu concentration, as shown in Figure 12. Periodic addition of Tu resulted in a higher copper dissolution rate and delayed the dissolution plateau.

[0143] Interestingly, solutions containing 100 mM Tu were not significantly more effective at extracting copper than solutions without Tu, and at some time points were even less effective. This is consistent with the results of Deschenes and Ghali, who reported that solutions containing 200 mM Tu (i.e., 15 g / L) did not improve copper extraction from chalcopyrite. Tu is unstable and decomposes at high concentrations. Therefore, if the initial Tu concentration is somewhat higher than 30 mM, the decomposition of Tu may produce enough elemental sulfur to form a film on the chalcopyrite mineral, thereby promoting its passivation. It is also possible that the high Tu dosage causes some copper to precipitate from solution (e.g., see Figure 17), which may account for some of the poor extraction results.

[0144] Example 2: Extraction of Chalcopyrite, Covellite, Chalcocite, Bornite, Arsenopyrite, Heterocystite, Violalite, and Cadmiumite with Thiourea The catalytic effect of Tu was further demonstrated in stirred reactor tests. All reactors were filled with 1.9 L of ferric sulfate solution with a pH of 1.8 and a total ion concentration of 40 mM. 1 g of mineral sample was used in each reactor test. These experimental conditions were set to maintain an unlimited supply of oxidant.

[0145] To demonstrate the catalytic effect on chalcopyrite, 100% pure synthetic chalcopyrite was used instead of chalcopyrite concentrate containing various impurities. The chalcopyrite was synthesized by hydrothermal reaction. First, CuCl, FeCl, and Tu were mixed in a 1:1:2 molar ratio and dissolved in 150 mL of deionized (DI) water. The resulting solution was transferred to a Teflon-lined reactor and heated to 240 °C for 24 hours. At the end of the reaction, the precipitated powder was washed with acidic water (pH = 1) and dried at room temperature. X-ray diffraction (XRD) analysis showed that the synthetic chalcopyrite did not contain any impurities compared to the chalcopyrite concentrate. This synthetic chalcopyrite was used in all tests conducted in a stirred reactor as disclosed herein.

[0146] [Table 2]

[0147] The covellite mineral used in the experiments disclosed herein was also synthesized hydrothermally. CuCl and Tu were mixed in a 1:1 molar ratio and dissolved in 150 mL of DI water. The resulting solution was transferred to a Teflon-lined reactor and heated to 220 °C for 24 hours. The synthesized CuS was acid washed and dried in air. XRD analysis showed that the CuS was 100% pure, without interference from other components.

[0148] The chalcocite mineral samples used in the experiments disclosed herein were natural minerals with 100% purity.

[0149] The bornite mineral used in the experiments disclosed herein was obtained from Butte, Montana, and its copper content was determined to be 58.9% by inductively coupled plasma-atomic emission spectrometry (ICP-AES). XRD analysis indicated that the mineral contained 76.8% bornite, 8.1% chalcopyrite, 6.3% pyrite, 5.8% arsenopyrite, and 3.0% enargite. The copper content calculated from XRD was 55.6%, which was in relatively good agreement with the chemical analysis.

[0150] The enargite used in the experiments disclosed herein was in the form of an enargite concentrate, which was found by XRD analysis to contain approximately 70% enargite (34% copper).

[0151] The cadmium sulfide mineral used in this experiment was synthesized hydrothermally. CdCl2 and thiourea were mixed in a 1:1 molar ratio and dissolved in 100 mL of DI water. The resulting solution was transferred to a Teflon-lined reactor and heated to 150 °C for 24 hours. The synthesized CdS was acid washed and dried in air. XRD analysis showed that the CdS was 100% pure with no interference from other components.

[0152] The violarite used in the experiments disclosed herein was a natural violarite mineral whose Ni content was determined to be 15.8% by ICP-AES. XRD analysis revealed that the mineral contained approximately 42% violarite and 13.1% NiSO4·6H2O.

[0153] The sulfur in the thiocarbonyl group contains a lone pair of electrons and a filled π orbital that can potentially receive electrons back from a filled d orbital on the transition metal. *Together with the antibonding orbitals, they can be used for donor-acceptor type bonding with the transition metal. Therefore, theoretically, it is speculated that the interaction between the surface ions and the thiocarbonyl functional group, especially the back-donation from the metal to the ligand, plays a role in the catalytic effect without the need for bonding. Also, the catalytic effect is more pronounced for transition metals with a higher d-electron number, and the catalytic effect is more pronounced for transition metals with a higher d-electron number. 10 It is speculated that this is most evident in minerals with electron configurations.

[0154] Figure 13 shows that Tu catalyzes the leaching of common copper sulfide minerals, including chalcopyrite, covellite, chalcocite, and bornite (all of which contain Cu(I)). After 96 hours of leaching, chalcopyrite extraction reached 64.1% with 2 mM Tu compared to 21.1% without Tu. Covellite extraction reached 74.4% with 2 mM Tu compared to 7.2% without Tu. Chalcocite extraction reached 85.6% with 2 mM Tu compared to 65.1% without Tu. Bornite extraction reached 91.4% with 2 mM Tu compared to 56.7% without Tu.

[0155] Like Cu(I), Cd(II) also 10 As shown in Figure 14, the leaching of CdS minerals is significantly improved by adding Tu. With Tu, cadmium extraction reached 100% in 48 hours, while extraction in the non-catalytic reaction plateaued at 47% after 96 hours.

[0156] The copper ions in enargite minerals have fewer d-electrons than other primary and secondary sulfides, and therefore the catalytic effect is expected to be slower than that of Cu(I) minerals. Nevertheless, as shown in Figure 15, it was clear that leaching with a leach solution containing an initial concentration of 2 mM Tu resulted in a higher leaching rate of copper from enargite compared to the control without Tu, which did not show any significant extraction after 96 hours of leaching.

[0157] Minerals containing transition metal ions with d7 electron configuration, such as Ni(III), were also catalytically leached with the addition of Tu. Similar to Cu(II), Ni(III) has a d 7 Since it is in the most stable oxidation state due to electrons, d 10 As can be seen from Figure 16, when leaching was performed using a leaching solution containing an initial concentration of 2 mM Tu, the nickel leaching rate from vioralite was higher than that of the control without Tu.

[0158] Table 3 summarizes the results of the leaching experiments mentioned in Example 2. Extraction rates under non-catalytic and catalytic conditions (initial concentration of 2 mM Tu) are compared.

[0159] [Table 3]

[0160] Example 3: Reagent Dosage Optimal reagent dosage results in high leaching efficiency. First, at a certain concentration, the reagent forms an insoluble complex with the target metal ion, resulting in precipitation. For example, Tu can form an insoluble complex with Cu(I) ions at a molar ratio of 3:1. Precipitation tests were conducted to determine the concentration range in which the Cu-Tu complex precipitates. A 20 mL Cu solution was divided into several equal portions, and various doses of Tu (i.e., 0 mM to 60 mM) were then added. The resulting solution was stirred for 24 hours, and the remaining Cu in the solution phase was analyzed by AAS. Figure 17 shows the results, plotting the percentage of residual Cu.

[0161] Second, heap leaching of metal sulfides is based on the bioleaching mechanism, and excessive amounts of reagents are harmful to the microorganisms used for bioleaching. For example, bacteria commonly used in bioleaching, such as Acidothiobacillus ferrooxidans and Acidothiobacillus thiooxidans, grow very slowly in solutions containing 10 mM Tu and cannot survive in 100 mM Tu.

[0162] Third, with particular regard to Tu, ferric iron reacts with Tu, converting it to FDS (see Hydrometallurgy 28, 381-397 (1992)). While the reaction is reversible under certain conditions, high concentrations of FDS tend to irreversibly decompose into cyanamide and elemental sulfur (see J Chromatogr 368, 444-449). 2Tu+2Fe 3+ ⇔FDS+2Fe 2+ +2H + FDS → Tu+cyanimide+S

[0163] Therefore, adding excessive Tu to the leaching agent will result in the oxidation and decomposition of Fe. 3+ and Tu can be lost. Irreversible degradation of FDS was observed when 4 mM Tu was added to a 40 mM ferric sulfate solution at pH 1.8.

[0164] To further investigate the effect of Tu dosage on copper extraction, stirred reactor tests were conducted using 1 g of synthetic chalcopyrite in 1.9 L of 40 mM ferric sulfate solution at pH 1.8 at various initial Tu concentrations. The treatment was carried out for 172 hours, approaching maximum extraction. The results are shown in Figure 18. The results indicated that higher Tu dosages per 1 g of chalcopyrite resulted in faster leaching rates among the various Tu concentrations tested.

[0165] For Tu doses of 5 mM or less, an initial 40 mM ferric sulfate solution is considered a sufficient source of oxidant. However, for higher Tu doses, such as 10 mM and 20 mM, additional ferric sulfate must be added to the solution (1:1 with respect to Tu) to oxidize Tu to FDS. For 10 mM Tu, an additional 10 mM Fe was added at time 0. 3+ In the case of 20 mM Tu, an additional 20 mM Fe was added after 72 hours. 3+ was added, and in this way, continuous extraction was performed as shown in FIG.

[0166] Cu extraction after 172 hours is plotted against Tu dose in Figure 19. It is clear that initial Tu doses of 5 mM or less have the most pronounced effect on Cu dissolution.

[0167] As mentioned above, various concentrations of Fe 3+ and Cu 2+ In the previous shake flask test using an acid solution (pH 1.8) containing ions, slight precipitation occurred due to the decomposition of FDS when 4 mM of Tu was added. Therefore, such precipitation can be avoided by keeping the Tu concentration below 4 mM. [Fe], which does not form Cu complex precipitates, 3+ ] and [Cu 2+ To determine the concentration range of [], we used an initial concentration of 2 mM Tu and various concentrations of Fe in the matrix. 3+ (0mM~100mM) and Cu 2+ A series of shake flask tests were performed on solutions containing 2 mM Tu (0 mM to 50 mM) and showed that over this wide range of Fe and Cu matrix concentrations, the use of 2 mM Tu resulted in neither precipitation nor loss of Cu from the solution phase.

[0168] Example 4: Alternative Reagents The catalytic effect of several other reagents containing thiocarbonyl functional groups on the leaching of synthetic chalcopyrite, covellite, bornite, and enargite was investigated. Experiments were conducted in a stirred reactor containing 40 mM ferric sulfate solution at pH 1.8. 1 g of chalcopyrite or covellite was added to the reactor along with various thiocarbonyl reagents, including Tu, TA, SDDC, ETC, and TSCA, at an initial concentration of 2 mM. Figures 20, 21, 22, and 23 show the Cu extraction curves for chalcopyrite, covellite, bornite, and enargite using all or some of the above reagents.

[0169] It is clear from Figures 20-23 that each of these additional reagents having a thiocarbonyl functionality exhibits a beneficial effect on the ferric sulfate leaching of each of chalcopyrite, covellite, bornite, and enargite.

[0170] Figure 24 summarizes the results of further stirred reactor tests on chalcopyrite in which urea and carbon disulfide were additionally investigated. These results confirmed that, as expected, both urea and carbon disulfide were ineffective reagents.

[0171] Example 5 FDS The catalytic effect of leach solutions prepared with FDS in the leaching of chalcopyrite, bornite, covellite, and chalcocite was determined in stirred reactor tests. All reactors were charged with 1.9 L of ferric sulfate solution with a pH of 1.8 and a total ion concentration of 40 mM. 1 g of mineral sample was used in each reactor test. An initial FDS concentration of 1 mM or an initial Tu concentration of 2 mM was applied.

[0172] The results of the stirred reactor tests shown in Figures 25a and 25b reveal that after 96 hours, FDS is as effective as Tu in leaching chalcopyrite, bornite, covellite, and chalcocite, respectively.

[0173] Example 6: Stepwise closed-loop bioleaching with Tu Closed-loop bioleaching was carried out using Tu. 7 kg of ore, primarily in the form of CuFeS2 and containing approximately 0.25% Cu, was leached at an aeration rate of approximately 300 mL / min and a flow rate of 1 L / day.

[0174] The ore was pretreated with sulfuric acid, which was used to leach oxides (e.g., bile and basic copper salts). After the acid leaching period, the residual solution was collected and replaced with a ferrous sulfate solution containing nutrients (40 mM FeSO4, 0.4 g / L magnesium sulfide heptahydrate, and 0.04 g / L potassium dihydrogen phosphate, adjusted to pH 1.6-1.8). The ferrous and nutrient solution was flushed through the column to provide a favorable habitat for bacterial growth. Bacterial inoculation increased the ORP from 274 mV to 550 mV within 48 hours. The solution used for this and subsequent steps was continuously circulated through the column, forming a self-sustaining closed-loop system.

[0175] At this stage, the remaining copper source is primarily CuFeS2. While the bacteria remained in the column, Tu was gradually added to the leachate. As described above, 40 mM Fe 3+ In the presence of Fe, Tu was converted to FDS at a molar ratio of 2:1. Operating potential (ORP) was used as an indicator of bacterial activity, and HPLC was used to monitor FDS content. From day 0 to day 50, the leachate was incubated with inoculated bacteria (without Tu) in 40 mM Fe. 3+ A total of 1.878 g of Tu was gradually added from day 90 to day 98. At this time, HPLC analysis of the effluent showed that the FDS concentration was maintained at approximately 1.5 mM, and no further Tu was added.

[0176] As shown in Figure 26, the ORP of the effluent was always higher than that of the influent, which indicates that bacteria were actively activating the Fe 2+ Fe 3+ The FDS content was analyzed by HPLC, and approximately 1.5 mM FDS (equivalent to the added 3 mM Tu) was present in the solution phase, with no precipitation observed. This indicates that 1.5 mM FDS (equivalent to 3 mM Tu) is available in solution without precipitation of ferric iron.

[0177] The results of the closed-loop leaching test are shown in Figure 27. From day 0 to day 50, the bacteria maintained high activity and 2+ Fe 3+ However, at a constant flow rate (1 L / day), the leaching rate for the first 50 days was only 1.97 mg Cu / day. When Tu addition was started on day 90, the Cu extraction rate increased to 6.54 mg / day and remained constant after 98 days. This indicates that the reagent was not degraded and remained effective in the closed-loop system.

[0178] Example 7 Extraction from Chalcopyrite with Thiocarbonyl Functional Reagents in the Presence of Chloride Example 7.1 The effect of chloride on the ability of Tu to promote leaching from copper sulfide was tested in stirred reactors. Each reactor contained 1 g of 100% pure synthetic chalcopyrite in 2 L of ferric sulfate solution at pH 1.7 with a total ferric concentration of 40 mM. Experimental reactors contained an initial 2 mM Tu with chloride concentrations of 20 g / L, 50 g / L, 80 g / L, or 120 g / L. Controls included reactors without Tu, reactors without chloride, and reactors without Tu or chloride. Additionally, a reactor containing 200 ppm Cu, 2 mM Tu, and 80 g / L chloride was included. These experimental conditions were set to allow for an unlimited supply of oxidant.

[0179] As shown in Figure 28, the presence of Tu has a positive effect on the extraction of copper from chalcopyrite in the presence of 120 g / L chloride. Although the amount of extracted copper decreased with increasing chloride concentration, the extraction rate of copper was nevertheless higher in the presence of Tu compared to when Tu was absent. For example, the extraction rate of copper was higher in a solution containing Tu and 120 g / L chloride compared to a solution containing only 20 g / L chloride without Tu.

[0180] Example 7.2 The effect of chloride on the ability of Tu or Etu to promote leaching from copper sulfide was tested in stirred reactors. Each reactor contained 1 g of chalcopyrite concentrate containing 21.6% copper per L of ferric sulfate solution at pH 1.7 with a total ferric concentration of 40 mM. Experimental reactors contained initial concentrations of 0 mM or 2 mM Tu or Etu with chloride concentrations of 0 g / L, 20 g / L, 80 g / L, or 200 g / L. The solution compositions are listed in Table 4.

[0181] [Table 4]

[0182] As shown in Figures 29a and 29b, the presence of Tu or E-Tu has a positive effect on the extraction of copper from chalcopyrite in the presence of 200 g / L chloride. Although the amount of extracted copper decreased with increasing chloride concentration, the extraction rate of copper was nevertheless higher in the presence of Tu compared to when Tu was absent. For example, the extraction rate of copper was higher in a solution containing Tu and 120 g / L chloride compared to a solution containing only 20 g / L chloride without Tu.

[0183] Example 8 Extraction from Chalcopyrite with Thiocarbonyl Functional Reagents in the Presence of Bromide The effect of bromide on the ability of reagents containing thiocarbonyl functional groups to promote leaching from copper sulfide was tested in stirred reactors over a 180-hour period. Each reactor contained 1 g of chalcopyrite concentrate containing 21.6% copper per liter of ferric sulfate solution at a pH of 1.7 and a total ferric concentration of 40 mM. Experimental reactors contained either Tu or Etu at an initial concentration of 2 mM with bromide concentrations of 10 g / L or 30 g / L (supplied in the form of potassium bromide). Reactors containing neither Tu nor Etu served as controls. The reactors were stirred at room temperature. The solution compositions are listed in Table 5.

[0184] [Table 5]

[0185] As shown in Figures 30a and 30b, both Tu and Etu had a positive effect on extracting copper from chalcopyrite in the presence of bromide at an initial concentration of 30 g / L.

[0186] Example 9 Extraction from Chalcopyrite with Thiocarbonyl Functional Reagents in the Presence of Iodide The ability of reagents containing thiocarbonyl functionality to promote leaching from copper sulfide in the presence of iodide was tested in stirred reactors over a 180-hour period. Each reactor contained 1 g of chalcopyrite concentrate containing 21.6% copper per liter of ferric sulfate solution at pH 1.7 and a total ferric concentration of 40 mM. Experimental reactors contained either Tu or Etu at an initial concentration of 2 mM with iodide concentrations of 100 ppm or 300 ppm (supplied in the form of potassium iodide). Reactors containing neither Tu nor Etu served as controls. The reactors were sealed and stirred at room temperature. The solution compositions are listed in Table 3.

[0187] [Table 6]

[0188] As shown in Figures 31a and 31b, the addition of thiocarbonyl compounds (here, TU and ETU as examples) to iodide media results in slightly slower reaction rates than leaching pure iodide in closed-reactor tests. Previous studies have suggested that complexation may occur between metals, iodide, and thiocarbonyl species (Bowmaker et al., Inorganic Chemistry, 48:350-368).

[0189] Therefore, the slow leaching kinetics is probably due to the iodide entering these complexes and becoming unavailable for catalysis.

[0190] Assume that the equilibrium between iodine, iodide, and triiodide is as follows: I2+I - ⇔I 3- K eq ≒700~770 Considering the fact that ferric ions can oxidize iodide to iodine by the following reaction: 2Fe 3+ +2I - →I2+2Fe 2+ Total iodine (iodide + iodine in this case) only needed to be accurately detected by in situ oxidation prior to ICP-AES detection, therefore only conventional ICP-AES was performed and the results were normalized.

[0191] Referring to Figure 32, analysis of the solution in the closed reactor revealed that most of the iodide remained in solution. However, in a real open environment, iodide would be oxidized to iodine by ferric iron, and the iodine would be expected to be lost from the leaching agent due to its volatility. Therefore, we tested whether iodide would be retained in a simulated open environment in the presence or absence of a reagent with a thiocarbonyl functional group. Two parallel open surface evaporation tests were conducted to demonstrate this phenomenon. Both containers were placed in the shade, with the solution surface directly exposed to the atmosphere. The solution was allowed to stagnate (without stirring). Residual iodide was measured over a 72-hour period. The solution compositions are listed in Table 7.

[0192] [Table 7]

[0193] See Figure 33. The results show that iodide entered the acidic ferric sulfate solution, rapidly converted to I2, and evaporated from the aqueous phase. In the presence of a reagent with a thiocarbonyl functional group, i.e., Tu, the total iodide concentration remained stable throughout the test.

[0194] Therefore, the ability of reagents containing thiocarbonyl functionality to promote leaching from copper sulfide in the presence of iodide was again tested in stirred reactors under open conditions for 83 hours. Each 2 L reactor contained 1 g of chalcopyrite concentrate containing 21.6% copper in 1 L of ferric sulfate solution at pH 1.7 with a total ferric concentration of 40 mM. Experimental reactors contained either Tu or Etu at an initial concentration of 2 mM with iodide concentrations of 100 ppm or 300 ppm (supplied in the form of potassium iodide). A reactor containing neither Tu nor Etu served as a control. The reactors were sealed and stirred at room temperature. The solution compositions are listed in Table 8.

[0195] [Table 8]

[0196] As shown in Figures 34a and 34b, both Tu and Etu had a positive effect on extracting copper from chalcopyrite in the presence of an initial iodide concentration of 300 ppm. The amount of extracted copper increased with increasing iodide concentration, but the extraction rate of copper was higher in the presence of Tu and Etu compared to when they were absent.

[0197] Iodide concentrations were also monitored during leaching. As shown in Figures 35a and 35b, iodide was rapidly lost from the aqueous phase in the open environment. The amount of iodide in solution decreased over time for each treatment. This is again due to the volatility of iodine produced by the oxidation of iodide by ferric iron. However, the decrease in iodide over time was much smaller in solutions containing Tu or Etu. Therefore, reagents with thiocarbonyl functional groups are useful for maintaining the stability of iodide in solution.

[0198] In general, reagents with thiocarbonyl functionality are compatible with leach systems containing halide components. They promote copper extraction in chloride and bromide leaching environments. In iodide systems, on the other hand, such reagents may not promote extraction under confined conditions, but under practical operating conditions, such as heap leaching, they improve the stability of iodide species in solution.

[0199] Example 10 Recovery of thiocarbonyl functional groups from PLS It is desirable to recover reagents from PLS for recycle to leaching. However, it was initially unclear whether it was possible to effectively recover reagents from PLS. Reagents with thiocarbonyl functionality are organic compounds that can dissolve in the organic solvents used in solvent extraction. This potentially has the undesirable effect of increasing costs by removing all catalyst from the aqueous phase, thus eliminating the possibility of catalyst recycle to leaching. This may also impair or even eliminate the effectiveness of the solvent extraction.

[0200] Reagents with thiocarbonyl functionality are complexing agents for copper, which prevents the reagent from being efficiently extracted from the copper complex during solvent extraction.

[0201] Reagents with thiocarbonyl functionality are also surfactants, and these reagents can interact with solvent-extracted organics, creating an interphase (also known as "residue") between the two phases, impairing solvent extraction performance and recovery.

[0202] Therefore, tests were conducted to determine whether reagents with thiocarbonyl functionality could be recovered from the PLS for recycling to the leaching agent.

[0203] Example 10.1 PLS from a chalcopyrite ore column leached with an acidic ferric sulfate solution containing Tu was mixed with an organic solvent containing a copper extractant for a specified time. The organic solvent was a mineral oil distillate (Exxsol® D80) containing aliphatic hydrocarbons, including naphthenic, paraffinic, and isoparaffinic components. The copper extractant was a weak ester-modified aldoxime (Acorga® M5910). The copper extractant content in the organic solvent was 6% v / v. The ratio of PLS ​​to organic solvent during mixing was 5:1 v / v. The PLS contained 2.5 mM equivalent of free Tu.

[0204] After mixing, the organic solvent and aqueous phases were separated and a sample taken from the aqueous phase was analyzed for reagent content. The feed PLS contained the equivalent of 2.5 mM free Tu.

[0205] The free Tu equivalents in the raffinate obtained after contacting the PLS with an organic solvent containing a copper extractant for 2, 4, and 10 minutes are shown in Table 9. Table 9 also shows the amounts of Tu and FDS in the PLS and the amount of copper remaining in the aqueous phase (i.e., the raffinate).

[0206] The results obtained are as follows: The catalytic reagents (in the form of TU and FDS) are recovered from the PLS in a copper-free raffinate. · Increasing the mixing time of organic solvent with PLS increases the ratio of Tu to FDS in the raffinate compared to PLS.

[0207] [Table 9]

[0208] Example 10.2 Synthetic solutions with different concentrations of ferric, cupric, chloride, bromide, iodide, and Tu were prepared in an acidic sulfate medium (pH = 1.7) to simulate pregnant leach solutions. Treatments with halogen species were included to simulate PLS obtained from different halogen leaching systems. The solution compositions are listed in Table 10.

[0209] [Table 10]

[0210] The TU equivalents were then measured using an Acorga M5910 before and after solvent extraction of the synthetic PLS solution to form the synthetic raffinate. Elemental analysis was performed using ICP-AES. HPLC was used to analyze thiocarbonyl compounds. To accurately measure the recovered Tu equivalents, zinc dust was added to the synthetic PLS and synthetic raffinate before analysis as a reducing agent to reduce all FDS species to TU. 2H + +FDS+Zn→Zn 2+ +2TU

[0211] Figure 36 is a bar graph showing the free Tu equivalents in the simulated PLS and in the simulated raffinate resulting from solvent extraction. Recovery is calculated based on the input concentrations. More Tu was recovered from the synthetic raffinate than from the synthetic PLS. This indicates that the Tu / FDS species was copper-released, complexed Tu / FDS after removal of copper ions from solution by SX.

[0212] Example 10.3 Synthetic solutions with different concentrations of ferric, cupric, chloride, bromide, iodide, and Etu were prepared in an acidic sulfate medium (pH = 1.7) to simulate pregnant leach solutions. Treatments with halogen species were included to simulate PLS obtained from different halogen leaching systems. The solution compositions are listed in Table 11.

[0213] [Table 11]

[0214] The Etu was then measured using an Acorga M5910 before and after solvent extraction of the synthetic PLS solution to form the synthetic raffinate. Elemental analysis was performed using ICP-AES. HPLC was used to analyze thiocarbonyl compounds.

[0215] Figure 37 is a bar graph showing free Etu in the simulated PLS and in the simulated raffinate resulting from solvent extraction. Recovery is calculated based on the input concentrations. More Etu was recovered from the synthetic raffinate than from the synthetic PLS. This indicates that the Etu species was copper-released, complexed Etu after removal of copper ions from solution by SX.

[0216] Example 11 Recovery of Thiocarbonyl Functional Group-Containing Reagents from Spent Leaching Materials See Figures 38 and 39. The inventors observed that some of the Tu added to the material being leached becomes sequestered within the material during the early stages of leaching. Columns containing three different copper ore samples were washed with a solution containing Tu at a concentration of 2 mM (152 ppm). The effluent solution was monitored to determine the Tu equivalent concentration. Washing was stopped when the concentration reached 2 mM.

[0217] Figure 38 shows a graph of the total Tu (i.e., Tu equivalent) concentration in the effluent solution. After approximately 28 hours of washing, the effluent concentration equaled the influent concentration. Figure 39 shows a graph of the effluent concentration during one of two acidic water (pH 1.8) washes for each ore sample. After 24 hours, the effluent concentration of Tu drops to nearly zero in each case. However, as shown in Table 12, a significant amount of Tu remained sequestered in the column, even after two such acidic washes.

[0218] [Table 12]

[0219] Figure 40 is a bar graph providing the data set forth in Table 12 in tabular form.

[0220] Without being bound by theory, sequestration may occur via an adsorption mechanism on the surface of the ore solids and / or by diffusion into the pore spaces of the ore solids. It is desirable to recover Tu from spent leach materials to minimize catalyst costs.

[0221] Therefore, we conducted tests on the ability of dilute solutions containing base metal ions to recover Tu from the leaching material. Specifically, with reference to Table 12 and Figure 38, rinsing the column with a dilute copper sulfate solution (e.g., 100 ppm, 500 ppm, or 1000 ppm Cu) demonstrated effectiveness in recovering Tu from the column. Assuming that interstitial and porous Tu is recovered during the acid rinse, the dilute copper solution appears to be effective in recovering Tu adsorbed to the ore surface. This is particularly significant given that the performance of acid rinse alone with different ores is highly variable. Furthermore, although increasing the copper concentration in the rinse solution increased the total Tu recovery, even the lowest concentration of 100 ppm produced significant results.

[0222] Indeed, those skilled in the art will appreciate that solutions containing base metal ions other than copper ions may be useful for recovering catalytic reagents, other than Tu, containing thiocarbonyl functional groups from depleted leach materials. As used herein, the terms "depleted" or "spent" when describing leach materials refer to materials, including ores or concentrates, that contain or have contained at least one base metal sulfide, said base metal sulfide being readily amenable to leaching with an acidic sulfate solution containing a reagent having a thiocarbonyl functional group, and that have been leached in some quantity.

[0223] Thus, those skilled in the art will appreciate that the present disclosure relates to a general method for recovering a reagent comprising sequestered thiocarbonyl functional groups from a leach material from which at least one base metal sulfide has been leached, the method comprising rinsing the leach material with a wash solution comprising base metal ions to produce a pregnant wash solution (PWS) comprising the reagent.

[0224] Those skilled in the art will appreciate that the method works for a wide range of base metal ion concentrations, hi various embodiments, the concentration of base metal ions in the cleaning solution is at least 100 ppm, at least 500 ppm, or at least 1,000 ppm.

[0225] Before rinsing the leaching material with the cleaning solution, the leaching material may be rinsed with an acidic solution, which may have a pH of about 1.8.

[0226] In various embodiments, the base metal ions comprise copper ions. In various embodiments, the copper ions comprise cupric ions.

[0227] The PWS containing the base metal ions and recovered reagent may then be added to a leaching agent comprising an acidic sulfate solution for use in recovering at least one base metal ion from a material comprising at least one base metal sulfide, as described below and exemplified in more detail in PCT Patent Application No. PCT / CA2016 / 050444, filed April 15, 2016, which is incorporated herein by reference.

[0228] Alternatively, as described further below, the PWS can be subjected to a solvent extraction process to remove base metal ions, and then the base metal ion-depleted solution can be added to a liquor comprising an acidic sulfate solution for use in recovering at least one base metal ion from a material comprising at least one base metal sulfide, as described further below. Subsequent leaching can be enhanced by recycling the base metal ion-depleted solution with higher free Tu, as Tu has a greater effect in enhancing leaching of base metals from materials containing base metal sulfides. Accordingly, aspects of the present disclosure relate specifically to adding a reducing agent to a base metal ion-depleted solution comprising Tu and FDS to bias the equilibrium in favor of Tu prior to addition to the liquor.

[0229] Those skilled in the art will appreciate that the recovered reagent may be used to supplement the reagent having a thiocarbonyl functionality that is pre-existing in the leaching agent (i.e., previously added to the leaching agent), or additional reagent having a thiocarbonyl functionality or FDS may be added to the leaching agent after the recovered reagent has been added.

[0230] Combining acidic and cupric washes allows for maximum, and possibly complete, recovery of Tu from copper ore heaps, thereby improving the economics of Tu catalytic heap leaching.

[0231] While particular embodiments of the present invention have been described and illustrated, these embodiments are merely exemplary of the invention and do not limit the invention as construed according to the appended claims.

Claims

1. 1. A method for producing base metals from at least one base metal sulfide, said method comprising: contacting the base metal sulfide with an acidic solution containing a reagent having a thiocarbonyl functional group and halide ions; extracting base metal ions from the base metal sulfide to produce a pregnant liquor containing the base metal ions; and recovering the base metal ions from the pregnant liquor to produce the base metal. A method comprising:

2. 10. The method of claim 1, wherein the reagent is not thiourea.

3. The reagents include N-N'-substituted thioureas, 2,5-dithiobiureas, dithiobiuret, thiosemicarbazide, thiosemicarbazide, thioacetamide, 2-methyl-3-thiosemicarbazide, 4-methyl-3-thiosemicarbazide, vinylene trithiocarbonate, vinylene trithiocarbonate, 2-cyanothioacetamide, ethylene trithiocarbonate, potassium ethylxanthate, dimethylthiocarbamoyl chloride, dimethyldithiocarbamate, dimethyltrithiocarbonate, N,N'-dimethylthioformamide, 4,4-dimethyl-3-thiosemicarbazide, 4-ethyl-3-thiosemicarbazide, O-isopropyl xanthate, ethyl thiooxamate, ethyl dithioacetate, pyrazine-2-thiocarboxamide, diethylthiocarbamoyl chloride, diethyldithiocarbamate, tetramethylthiuram monosulfide, tetramethylthiuram disulfide, pentafluorophenyl chlorothionoformate, 4-fluorophenyl chlorothionoformate, O-phenyl chlorothionoformate, phenyl chlorodithionoformate, 3,4-di Fluorothiobenzamide, 2-bromothiobenzamide, 3-bromothiobenzamide, 4-bromothiobenzamide, 4-chlorothiobenzamide, 4-fluorothiobenzamide, thiobenzoic acid, thiobenzamide, 4-phenylthiosemicarbazide, O-(p-tolyl)chlorothionoformic acid, 4-bromo-2-methylthiobenzamide, 3-methoxythiobenzamide, 4-methoxythiobenzamide, 4-methylbenzenethioamide, thioacetanilide, salicylaldehyde thiosemicarbazone, indomethacin 1R,4R)-1,7-dichloro-3-thiocarboxamide, S-(thiobenzoyl)thioglycolic acid, 3-(acetoxy)thiobenzamide, 4-(acetoxy)thiobenzamide, N'-[(e)-(4-chlorophenyl)methylidene]hydrazonothiocarbamate methyl, 3-ethoxythiobenzamide, 4-ethylbenzene-1-thiocarboxamide, diethyldithiocarbamic acid, 2-(phenylcarbonothioylthio)propanoic acid, 2-hydroxybenzaldehyde, N-ethyl thiosemicarbazone, (1R,4R)-1,7,The method according to claim 1 or 2, wherein the thiol-containing compound is 7-trimethylbicyclo[2.2.1]heptane-2-thione, tetraethylthiuram disulfide, 4'-hydroxybiphenyl-4-thiocarboxamide, 4-biphenylthioamide, dithizone, 4'-methylbiphenyl-4-thiocarboxamide, tetraisopropylthiuram disulfide, anthracene-9-thiocarboxamide, phenanthrene-9-thiocarboxamide, sodium dibenzyldithiocarbamate, 4,4'-bis(dimethylamino)thiobenzophenone, or a combination thereof.

4. The method of claim 1 , wherein the reagent is thiourea (Tu).

5. The method of claim 1 or 2, wherein the reagent is thioacetamide (TA).

6. The method according to claim 1 or 2, wherein the reagent is sodium dimethyldithiocarbamate (SDDC).

7. 3. The method of claim 1, wherein the reagent is ethylene trithiocarbonate (ETC).

8. The method of claim 1 or 2, wherein the reagent is thiosemicarbazide (TSCA).

9. 3. The method of claim 1, wherein the reagent is ethylene thiourea (ETu).

10. 10. The method of claim 1, wherein the concentration of the reagent in the acidic solution is in the range of 0.001 mM to 100 mM.

11. 10. The method of claim 1, wherein the concentration of the reagent in the acidic solution is in the range of 0.001 mM to 60 mM.

12. 10. The method of claim 1, wherein the concentration of the reagent in the acidic solution is in the range of 0.001 mM to 50 mM.

13. 10. The method of claim 1, wherein the concentration of the reagent in the acidic solution is in the range of 0.001 mM to 30 mM.

14. 10. The method of claim 1, wherein the concentration of the reagent in the acidic solution is in the range of 0.001 mM to 2.0 mM.

15. 15. The method of any one of claims 1 to 14, wherein the reagent does not form a complex / precipitate with the base metal ion.

16. 1. A method for producing base metals from at least one base metal sulfide, said method comprising: contacting the base metal sulfide with an acidic solution containing formamidine disulfide (FDS) and halide ions; extracting base metal ions from the base metal sulfide to produce a pregnant liquor containing the base metal ions; and recovering the base metal ions from the pregnant liquor to produce the base metal. A method comprising:

17. 17. The method of claim 16, wherein the concentration of FDS in the acidic solution is in the range of 0.001 mM to 50 mM.

18. 17. The method of claim 16, wherein the concentration of FDS in the acidic solution is in the range of 0.001 mM to 30 mM.

19. 17. The method of claim 16, wherein the concentration of FDS in the acidic solution is in the range of 0.001 mM to 25 mM.

20. 17. The method of claim 16, wherein the concentration of FDS in the acidic solution is in the range of 0.001 mM to 15 mM.

21. 17. The method of claim 16, wherein the concentration of FDS in the acidic solution is in the range of 0.001 mM to 1.0 mM.

22. 22. The method of any one of claims 1 to 21, wherein the halide ions comprise chloride ions.

23. 23. The method of any one of claims 1 to 22, wherein the halide ions comprise bromide ions.

24. 24. The method of any one of claims 1 to 23, wherein the halide ions comprise iodide ions.

25. 25. The method of any one of claims 1 to 24, wherein the acidic solution contains at least one oxidizing agent.

26. 26. The method of claim 25, wherein the at least one oxidizing agent contains a source of ferric ions.

27. 27. The method of any one of claims 1 to 26, wherein the acidic solution contains a ferrous sulfate solution.

28. 28. The method of any one of claims 1 to 27, wherein the at least one base metal sulfide comprises at least one base metal sulfide selected from the group consisting of at least one copper sulfide, at least one cadmium sulfide, at least one nickel sulfide, and combinations thereof.

29. 29. The method of any one of claims 1 to 28, wherein the base metal ions comprise ions selected from the group consisting of copper, cadmium, nickel, or combinations thereof.

30. 30. The method of any one of claims 1 to 29, wherein the method comprises leaching.

31. 31. The method of any one of claims 1 to 30, further comprising maintaining an operating potential of the acidic solution greater than 500 mV vs. Ag / AgCl.

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