Bromine-based leaching agent system and method for recycling precious metal in waste circuit board by using bromine-based leaching agent system

By slowly releasing bromine elements and compounds through a bromine-based leaching agent system, combined with a weakly acidic environment and a cascade separation process, the problems of low efficiency, high cost and strong equipment corrosion of existing leaching agents are solved, and efficient recovery of precious metals and regeneration of bromine reagents are achieved, which has significant industrial application value.

CN120843837AActive Publication Date: 2025-10-28CHANGCHUN GOLD RES INST
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Patent Information

Application Number
CN202511327247.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2025-10-28
Estimated Expiration
2045-09-17

AI Technical Summary

Technical Problem

The existing leaching agent system has problems such as low leaching efficiency for precious metals, high cost, strong corrosion to equipment, and easy generation of harmful gases.

Method used

The leaching agent system uses bromine-based strong oxidants, sodium bromide and sodium iodide. By slowly releasing bromine elements and compounds to maintain the optimal concentration, combined with a weakly acidic environment and a cascade separation process, efficient recovery of precious metals and simultaneous regeneration of bromine reagents are achieved.

Benefits of technology

It significantly improves the leaching efficiency of precious metals, reduces bromine consumption and equipment corrosion, increases the recycling rate of bromine, and reduces processing costs.

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Abstract

The invention provides a bromine-based leaching agent system and a method for recycling precious metal in a waste circuit board, and belongs to the technical field of hydrometallurgy. According to the method, a stable bromine-based strong oxidant, sodium bromide and sodium iodide are used as a leaching agent system, the bromine volatilization loss is controlled to be 5% or below through a bromine slow-release mechanism, the bromine consumption is reduced by 15% or above compared with a traditional liquid bromine leaching process, meanwhile, sodium iodide is introduced as a catalytic promoter, and the sodium bromide consumption is remarkably reduced. And a weak acid leaching environment is adopted, so that the problem of equipment corrosion is effectively relieved while the leaching efficiency is ensured. The developed'distillation-precipitation 'coupling process realizes efficient recovery of silver and synchronous regeneration of a bromine reagent, so that the cyclic utilization rate of bromine reaches 80% or above. By constructing a gradient separation system of gold selective reduction-silver distillation precipitation-palladium solvent extraction, efficient recovery of precious metals is realized. According to the method, the treatment cost is greatly reduced through cyclic utilization of the bromine reagent, and the method has remarkable industrial application value and wide market prospects.
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Description

Technical Field

[0001] This invention relates to the field of hydrometallurgical technology, specifically to a bromine-based leaching agent system and a method for recovering precious metals from waste circuit boards. Background Technology

[0002] Metal recycling from waste printed circuit boards primarily relies on two processes: pyrometallurgy and hydrometallurgy. While pyrometallurgy can extract metals through high-temperature smelting, it suffers from drawbacks such as high energy consumption, high costs, and the generation of toxic waste gases, requiring a stringent exhaust gas treatment system, resulting in higher environmental and economic costs. In contrast, hydrometallurgy, with its advantages of lower investment, controllable pollution, and high metal recovery rates, is particularly suitable for small and medium-sized recycling companies, making it a more promising recycling method.

[0003] In hydrometallurgical processes, waste printed circuit boards typically require manual or mechanical disassembly to remove major components, followed by crushing and grinding. The resulting powder is then subjected to acid or alkaline leaching to separate heavy metals such as copper, lead, and zinc. The residue after leaching requires further extraction of precious metals using methods such as cyanidation and halogenation. However, traditional cyanidation leaching processes suffer from high toxicity, long leaching cycles, and low recovery rates. In contrast, halogenation gold extraction technology is gaining increasing attention due to its high efficiency.

[0004] Currently, commonly used halogen leaching agents include hydrochloric acid, chlorine, hypochlorous acid, sodium hypochlorite, iodine, and liquid bromine. However, halogens are chemically reactive, readily volatilizing to produce irritating gases, and typically react under strongly acidic conditions, causing severe corrosion to equipment and increasing process complexity and operating costs. Therefore, developing a green, efficient, and low-toxicity process for recycling precious metals (gold, silver, platinum, palladium) from waste printed circuit boards is of significant social importance for improving resource utilization and promoting the development of a circular economy. Summary of the Invention

[0005] In view of the technical problems existing in the background art, this application provides a bromine-based leaching agent system and a method for recovering precious metals from waste circuit boards, aiming to solve the problems of low leaching efficiency, high cost, strong corrosiveness to equipment, and easy generation of harmful gases in existing leaching agent systems for precious metals.

[0006] In a first aspect, this application provides a bromine-based leaching agent system, which comprises a bromine-based strong oxidant, sodium bromide, and sodium iodide.

[0007] In the technical solution of this application embodiment, a leaching agent system is used, consisting of a bromine-based strong oxidant, sodium bromide, and sodium iodide. This system stabilizes the bromine-based strong oxidant and allows for the slow release of bromine and its compounds, which possess strong oxidizing properties. This slow release process maintains the effective bromine concentration in the gold leaching system at an optimal level, avoiding inefficiency and leaching agent loss caused by excessively rapid Br2 volatilization and decomposition. By controlling bromine volatilization loss to below 5% through a slow-release bromine mechanism, the amount of bromine used is reduced by more than 15% compared to traditional liquid bromine leaching processes. Simultaneously, sodium iodide is introduced as a catalyst, forming stable complexes with the noble metals oxidized to positive valence, significantly reducing the amount of sodium bromide used. This agent system can leach in a weakly acidic environment, effectively mitigating equipment corrosion while ensuring leaching efficiency.

[0008] In some embodiments, the stable bromine-based strong oxidant is one or more of dibromodimethylhydantoin, bromochlorodimethylhydantoin, and monobromodimethylhydantoin.

[0009] In this embodiment, a stable bromine-based strong oxidant can slowly release bromine and its compounds, which have strong oxidizing properties. This system can maintain the optimal bromine concentration required for gold immersion and achieve efficient complexation and dissolution of precious metals from waste circuit boards by slowly oxidizing and converting them into soluble ions.

[0010] In some embodiments, the molar concentrations of the stable bromine-based strong oxidant, sodium bromide, and sodium iodide in the bromine-based leaching agent system are 0.04~0.2 mol / L, 0.2~1.2 mol / L, and 0.02~0.04 mol / L, respectively.

[0011] In this embodiment, by using appropriate ratios of the various agents, the leaching effect can be improved.

[0012] Secondly, this application provides a method for recovering precious metals from waste circuit boards using a bromine-based leaching agent system. The method employs the aforementioned stable bromine-based leaching agent system and includes the following steps: S1. The waste circuit boards are crushed and ground, then a mixed solution of sulfuric acid and strong oxidant is added and leached to obtain precious metal-enriched leaching residue. S2. Add a bromine-based leaching agent system to the precious metal enrichment leaching residue, adjust the pH value, then stir and leach, and separate the solid and liquid to obtain the precious metal separation raw solution; S3. Ferrous sulfate is added to the precious metal separation solution, and the potential of the redox reaction is monitored and controlled. After the redox reaction is completed, the solution is filtered by pressure to obtain gold powder and filtrate. S4. The filtrate is subjected to vacuum distillation and then centrifuged to obtain AgBr precipitate, gaseous bromine and distillate. The AgBr precipitate is purified by electrolysis to obtain silver powder, and the gaseous bromine is condensed to obtain liquid bromine for regenerating bromine-based oxidants. S5. The distillate is mixed with an extractant and extracted to obtain a loaded organic phase. The loaded organic phase is then mixed with a back-extractant and back-extracted to separate palladium.

[0013] In the technical solution of this application, a stepped separation system of gold selective reduction-silver distillation precipitation-palladium solvent extraction is constructed, combined with the aforementioned stable bromine-based leaching reagent system, to achieve efficient recovery of precious metals. Simultaneously, a "distillation-precipitation" coupled process is developed, enabling efficient silver recovery and simultaneous regeneration of the bromine reagent, resulting in a bromine recycling rate of over 80%. This application significantly reduces processing costs through the recycling of the bromine reagent, demonstrating significant industrial application value and broad market prospects.

[0014] In some embodiments, in step S2, the mass-to-volume ratio of the precious metal enrichment leaching residue and the bromine-based leaching agent system is 1:2 to 1:4.

[0015] In this embodiment, a specific ratio of precious metal enrichment leaching residue and bromine-based leaching agent system can improve the leaching effect.

[0016] In some embodiments, in step S2, the pH value in the pH adjustment is 3.0 to 4.5.

[0017] In this embodiment, the process adopts a weakly acidic leaching environment with a pH of 3.0~4.5. The slow-release bromine-based strong oxidant can maintain the redox potential of the leaching system above 0.8V, effectively reducing equipment corrosion while ensuring leaching efficiency.

[0018] In some embodiments, in step S2, the temperature of the stirring leaching is 25~30°C, and the stirring leaching time is 14~24h.

[0019] In this embodiment, efficient leaching of precious metals can be achieved at a lower temperature, which can reduce the volatilization of bromine while ensuring effective leaching.

[0020] In some embodiments, in step S4, the temperature of the vacuum distillation is 60~75°C, and the temperature of the condensation is 0~10°C.

[0021] In this embodiment, bromine is volatilized in gaseous form by vacuum distillation, while silver ions are precipitated as AgBr. After condensation, the gaseous bromine can be condensed into liquid bromine.

[0022] In some embodiments, in step S3, 4.5-6 mol of ferrous sulfate is added to each mole of gold ions in the precious metal separation solution, the temperature of the redox reaction is 20-60°C, the reaction time is 20-60 min, and the redox potential is <200 mV.

[0023] In this embodiment, gold ions in the solution undergo a redox reaction with ferrous sulfate, whereby the ferrous ions are oxidized to ferric ions and the gold-bromine complex ions are reduced to elemental gold.

[0024] In some embodiments, in step S5, the extractant is β-hydroxyoxime or triisobutylphosphine sulfide, and the volume ratio of the distillate to the extractant is 2:1; the back-extractant is a thiourea solution or ammonia, the molar concentration of the thiourea solution is 0.8~1.2 mol / L, the mass concentration of the ammonia is 3~8%, and the volume ratio of the supported organic phase to the back-extractant is 1:1.

[0025] In this embodiment, an extractant is added to the distillate, and palladium ions form a stable chelate with the extractant to obtain a loaded organic phase. Then, a back-extractant is added to back-extract the palladium ions from the organic phase to the inorganic phase, and palladium is recovered.

[0026] The above description is only an overview of the technical solution of this application. In order to better understand the technical means of this application and to implement it in accordance with the contents of the specification, and to make the above and other objects, features and advantages of this application more obvious and understandable, the following are specific embodiments of this application. Attached Figure Description

[0027] To more clearly illustrate the technical solutions of this application, the accompanying drawings used in this application will be briefly described below. Obviously, the drawings described below are merely some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without any creative effort.

[0028] Figure 1 This is a flowchart illustrating the process of treating waste printed circuit boards using a bromine-based leaching agent system in an embodiment of this application. Detailed Implementation

[0029] The embodiments of the technical solution of this application are described in detail below. The following embodiments are only used to illustrate the technical solution of this application more clearly, and are therefore only examples, and should not be used to limit the scope of protection of this application.

[0030] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0031] To address the problems of low leaching efficiency, high cost, strong corrosiveness to equipment, and easy generation of harmful gases in existing leaching agent systems for precious metals, this application provides a bromine-based leaching agent system and a method for recovering precious metals from waste circuit boards. The leaching agent system uses a stable bromine-based strong oxidant, sodium bromide, and sodium iodide. The stable bromine-based strong oxidant can slowly release bromine and its compounds, which have strong oxidizing properties. This slow release process maintains the effective bromine concentration in the leaching system at an optimal level, avoiding inefficiency and leaching agent loss caused by excessively rapid Br2 volatilization and decomposition. By controlling bromine volatilization loss to below 5% through a slow-release bromine mechanism, the amount of bromine used is reduced by more than 15% compared to traditional liquid bromine leaching processes. Simultaneously, sodium iodide is introduced as a catalyst to form stable complexes with the precious metals oxidized to positive valence, significantly reducing the amount of sodium bromide used. A weakly acidic leaching environment is used, effectively mitigating equipment corrosion while ensuring leaching efficiency. A specially developed "distillation-precipitation" coupled process achieves efficient silver recovery and simultaneous regeneration of bromine reagent, resulting in a bromine recycling rate of over 80%. By constructing a tiered separation system of gold selective reduction-silver distillation precipitation-palladium solvent extraction, efficient recovery of precious metals is achieved. This application significantly reduces processing costs through the recycling of bromine reagent, demonstrating significant industrial application value and broad market prospects.

[0032] In a first aspect, this application provides a bromine-based leaching agent system, which comprises a bromine-based strong oxidant, sodium bromide, and sodium iodide.

[0033] In the technical solution of this application embodiment, a leaching agent system is used, consisting of a bromine-based strong oxidant, sodium bromide, and sodium iodide. This system stabilizes the bromine-based strong oxidant and allows for the slow release of bromine and its compounds, which possess strong oxidizing properties. This slow release process maintains the effective bromine concentration in the gold leaching system at an optimal level, avoiding inefficiency and leaching agent loss caused by excessively rapid Br2 volatilization and decomposition. By controlling bromine volatilization loss to below 5% through a slow-release bromine mechanism, the amount of bromine used is reduced by more than 15% compared to traditional liquid bromine leaching processes. Simultaneously, sodium iodide is introduced as a catalyst, forming stable complexes with the noble metals oxidized to positive valence, significantly reducing the amount of sodium bromide used. This agent system can leach in a weakly acidic environment, effectively mitigating equipment corrosion while ensuring leaching efficiency.

[0034] Furthermore, in some embodiments, the stable bromine-based strong oxidant is one or more of dibromodimethylhydantoin, bromochlorodimethylhydantoin, and monobromodimethylhydantoin.

[0035] In the technical solution of this application embodiment, a stable bromine-based strong oxidant can slowly release bromine elemental and compounds with strong oxidizing properties. This system can maintain the optimal bromine concentration required for immersion gold, and achieve efficient complexation and dissolution of precious metals from waste circuit boards by slowly oxidizing and converting precious metals into soluble ions.

[0036] Furthermore, in some embodiments, the molar concentrations of the stable bromine-based strong oxidant, sodium bromide, and sodium iodide in the bromine-based leaching agent system are 0.04~0.2 mol / L, 0.2~1.2 mol / L, and 0.02~0.04 mol / L, respectively.

[0037] In the technical solution of this application embodiment, the leaching effect can be better by using appropriate ratios of various agents.

[0038] Secondly, this application provides a method for recovering precious metals from waste circuit boards using a bromine-based leaching agent system. The method employs the aforementioned stable bromine-based leaching agent system and includes the following steps: S1. The waste circuit boards are crushed and ground, then a mixed solution of sulfuric acid and strong oxidant is added and leached to obtain precious metal-enriched leaching residue. S2. Add a bromine-based leaching agent system to the precious metal enrichment leaching residue, adjust the pH value, then stir and leach, and separate the solid and liquid to obtain the precious metal separation raw solution; S3. Ferrous sulfate is added to the precious metal separation solution, and the potential of the redox reaction is monitored and controlled. After the redox reaction is completed, the solution is filtered by pressure to obtain gold powder and filtrate. S4. The filtrate is subjected to vacuum distillation and then centrifuged to obtain AgBr precipitate, gaseous bromine and distillate. The AgBr precipitate is purified by electrolysis to obtain silver powder, and the gaseous bromine is condensed to obtain liquid bromine for regenerating bromine-based oxidants. S5. The distillate is mixed with an extractant and extracted to obtain a loaded organic phase. The loaded organic phase is then mixed with a back-extractant and back-extracted to separate palladium.

[0039] In the technical solution of this application, a stepped separation system of gold selective reduction-silver distillation precipitation-palladium solvent extraction is constructed, combined with the aforementioned stable bromine-based leaching reagent system, to achieve efficient recovery of precious metals. Simultaneously, a "distillation-precipitation" coupled process is developed, enabling efficient silver recovery and simultaneous regeneration of the bromine reagent, resulting in a bromine recycling rate of over 80%. This application significantly reduces processing costs through the recycling of the bromine reagent, demonstrating significant industrial application value and broad market prospects.

[0040] Furthermore, in some embodiments, in step S2, the mass-to-volume ratio of the precious metal enrichment leaching residue and the bromine-based leaching agent system is 1:2 to 1:4.

[0041] In the technical solution of this application embodiment, a specific ratio of precious metal enrichment leaching residue and bromine-based leaching agent system can improve the leaching effect.

[0042] Furthermore, in some embodiments, in step S2, the pH value in the pH adjustment is 3.0 to 4.5.

[0043] In the technical solution of this application embodiment, the process adopts a weakly acidic leaching environment with a pH of 3.0~4.5. The slow-release bromine-based strong oxidant can maintain the redox potential of the leaching system above 0.8V, effectively reducing equipment corrosion problems while ensuring leaching efficiency.

[0044] Furthermore, in some embodiments, in step S2, the temperature of the stirring leaching is 25~30°C, and the stirring leaching time is 14~24h.

[0045] In the technical solution of this application embodiment, the high efficiency of precious metal leaching can be achieved at a lower temperature, which can reduce the volatilization of bromine while ensuring effective leaching.

[0046] Furthermore, in some embodiments, in step S4, the temperature of the vacuum distillation is 60~75°C, and the temperature of the condensation is 0~10°C.

[0047] In the technical solution of this application embodiment, bromine is volatilized in gaseous form by vacuum distillation, while silver ions are precipitated as AgBr. After condensation, the gaseous bromine can be condensed into liquid bromine.

[0048] Furthermore, in some embodiments, in step S3, 4.5-6 mol of ferrous sulfate is added to each mole of gold ions in the precious metal separation solution, the temperature of the redox reaction is 20-60°C, the reaction time is 20-60 min, and the redox potential is <200 mV.

[0049] In the technical solution of this application embodiment, gold ions in the solution undergo a redox reaction with ferrous sulfate, whereby the ferrous ions are oxidized to ferric ions and the gold-bromine complex ions are reduced to elemental gold.

[0050] Further, in some embodiments, in step S5, the extractant is β-hydroxyoxime or triisobutylphosphine sulfide, and the volume ratio of the distillate to the extractant is 2:1; the back-extraction agent is thiourea solution or ammonia, the molar concentration of the thiourea solution is 0.8~1.2 mol / L, the mass concentration of the ammonia is 3~8%, and the volume ratio of the supported organic phase to the back-extraction agent is 1:1.

[0051] In the technical solution of this application embodiment, an extractant is added to the distillate, and palladium ions form a stable chelate with the extractant to obtain a loaded organic phase. Then, a back-extractant is added to back-extract the palladium ions from the organic phase to the inorganic phase, and palladium is recovered.

[0052] Further, in some embodiments, step S4, the step of regenerating the bromine-based oxidant includes: dissolving 5,5-dimethylhydantoin in a 5-10% NaOH solution, then adding it to the liquid bromine, wherein the molar ratio of Br2 to 5,5-dimethylhydantoin is 2:1, adjusting the pH value to 8-12, and reacting at 10°C to obtain the bromine-based oxidant.

[0053] In the technical solution of this application embodiment, the method can realize the recovery and utilization of bromine in the leaching agent system.

[0054] Furthermore, in some embodiments, in step S1, the fineness of the grinding is such that 80% of the material is less than 120 mesh.

[0055] In the technical solution of this application embodiment, electronic waste is ground to a certain particle size to facilitate subsequent leaching.

[0056] Furthermore, in some embodiments, in step S1, the concentration of sulfuric acid is 1~2 mol / L, the strong oxidant is hydrogen peroxide or sodium hypochlorite, and the mass concentration of the strong oxidant is 3~7%; the solid-liquid ratio in the leaching system is 1:3~1:5, the leaching temperature is 50~70℃, and the leaching time is 4~6h.

[0057] In the technical solution of this application embodiment, under these conditions, valuable metals such as copper, zinc, tin, and lead can be selectively removed to obtain precious metal-enriched leaching residue.

[0058] The following are some specific embodiments. It should be noted that the embodiments described below are exemplary and are only used to explain this application, and should not be construed as limiting this application. Where specific techniques or conditions are not specified in the embodiments, they shall be performed in accordance with the techniques or conditions described in the literature in this field or according to the product instructions. Reagents or instruments whose manufacturers are not specified are all conventional products that can be obtained commercially.

[0059] Example 1 Example 1 provides a bromine-based leaching agent system comprising 0.06 mol / L dibromodimethylhydantoin, 0.4 mol / L sodium bromide, and 0.04 mol / L sodium iodide.

[0060] Waste printed circuit boards were treated using the above-mentioned bromine-based leaching agent system, such as... Figure 1 As shown, the specific steps include the following: (1) The waste printed circuit board was mechanically crushed and ground into powder with a particle size of less than 120 mesh accounting for 80%. 2 mol / L sulfuric acid and 5% hydrogen peroxide were mixed to obtain a mixed solution. The solution was then leached for 6 hours at a solid-liquid ratio of 1:3 and a leaching temperature of 70℃ to obtain precious metal enriched leaching residue. (2) The above precious metal enrichment leaching residue and bromine-based leaching agent system are mixed at a solid-liquid ratio of 1:3, the pH value is adjusted to 4, and the mixture is stirred and leached at 25°C for 16 hours. After leaching, the mixture is separated by pressure filtration to obtain the precious metal separation solution. (3) Add ferrous sulfate to the original solution of precious metal separation, wherein 6 mol of ferrous sulfate is added for every mole of gold ions, and react at 40°C for 60 min. The potential of the redox reaction is controlled to be <200 mV. After the reaction is completed, the solution is filtered by pressure to obtain gold powder and filtrate. (4) The above filtrate was distilled under reduced pressure at 70°C to obtain bromine gas, and then the bromine gas was condensed at 5°C to obtain liquid bromine. The slurry after distillation was centrifuged to obtain AgBr precipitate. (5) The distillate was mixed with triisobutylphosphine sulfide at a volume ratio of 2:1 and extracted to obtain a loaded organic phase. The loaded organic phase was then mixed with 1.2 mol / L thiourea solution at a volume ratio of 1:1 and extracted again to recover palladium.

[0061] (6) Dissolve 5,5-dimethylhydantoin in 9% NaOH solution and add it to the above liquid bromine. The molar ratio of Br2 to 5,5-dimethylhydantoin is 2:1. Adjust the pH value to 10 and react at 10℃ to obtain bromine-based oxidant.

[0062] The performance parameters of the raw materials are shown in Table 1.

[0063] Table 1 Chemical composition of waste printed circuit boards Comparative Example 1 Comparative Example 1 provides a method for recovering precious metals from waste circuit boards using a leaching agent system. The difference from Example 1 is that the leaching agent in step (2) is 0.06 mol / L liquid bromine, and the pH value is adjusted to 0.8. The other steps are roughly the same as in Example 1, and will not be repeated here.

[0064] Comparative Example 2 Comparative Example 2 provides a method for recovering precious metals from waste circuit boards using a leaching agent system. The difference from Example 1 is that the leaching agent system in step (2) does not contain sodium iodide. The other steps are roughly the same as in Example 1 and will not be repeated here.

[0065] The leaching rates of gold, silver, and palladium in step (2) and the recovery rate of bromine in step (4) of the above examples and comparative examples were measured respectively. The test results are shown in Table 2.

[0066] Table 2 shows the leaching rates of gold, silver, and palladium in step (2) of Example 1, and the bromine recovery rate in step (4). As shown in Table 2, the comparison results between Example 1 and Comparative Example 1 indicate that when using the traditional liquid bromine leaching process, the leachate needs to be maintained under strongly acidic conditions (pH < 1), and the bromine recovery rate is greatly reduced, with bromine volatilization loss reaching as high as 30%, resulting in a significant increase in reagent consumption. The comparison results between Example 1 and Comparative Example 2 confirm that adding sodium iodide as a catalyst to the leaching system not only greatly improves the leaching rate of precious metals, but also increases the bromine recovery rate, and can reduce the amount of sodium bromide used by about 10%.

[0067] Examples 2-6 and Comparative Examples 3-8 Examples 2-6 and Comparative Examples 3-8 respectively provide a method for recovering precious metals from waste circuit boards using a bromine-based leaching agent system. The difference from Example 1 is that the concentrations of each component in the leaching agent system are different, as shown in Table 3. The other steps are roughly the same as in Example 1 and will not be repeated here.

[0068] Table 3 shows the concentrations of each component in the leaching agent systems of Examples 2-6 and Comparative Examples 3-8. The leaching rates of gold, silver, and palladium in step (2) of Examples 1-6 and Comparative Examples 3-8, and the recovery rate of bromine in step (4) were measured respectively. The test results are shown in Table 4.

[0069] Table 4 shows the leaching rates of gold, silver, and palladium in step (2) of Examples 1-6 and Comparative Examples 3-8, and the bromine recovery rate in step (4). Table 4 shows that the leaching efficiency of gold, silver, and palladium mainly depends on the concentrations of the stable bromine-based oxidant, sodium bromide, and sodium iodide. The key is to maintain a sufficient oxidation potential to oxidize the noble metals and to promote the formation of stable complexes between Br⁻ and I⁻ and the oxidized metal ions. However, excessive addition of reagents not only reduces the recovery efficiency and increases production costs but also affects overall economic viability. Furthermore, the bromine recovery rate is highly dependent on the control effectiveness of subsequent processes.

[0070] In summary, this application provides a bromine-based leaching agent system and a method for recovering precious metals from waste circuit boards. Using a stable bromine-based strong oxidant, sodium bromide, and sodium iodide as the leaching agent system, the stable bromine-based strong oxidant can slowly release elemental bromine and its compounds, which have strong oxidizing properties. This slow release process maintains the effective bromine concentration in the leaching system at an optimal level, avoiding inefficiency and leaching agent loss caused by excessively rapid Br2 volatilization and decomposition. By controlling bromine volatilization loss to below 5% through a slow-release bromine mechanism, the amount of bromine used is reduced by more than 15% compared to traditional liquid bromine leaching processes. Simultaneously, sodium iodide is introduced as a catalyst to form stable complexes with the precious metals oxidized to positive valence, significantly reducing the amount of sodium bromide used. A weakly acidic leaching environment is used, effectively mitigating equipment corrosion while ensuring leaching efficiency. A specially developed "distillation-precipitation" coupling process achieves efficient silver recovery and simultaneous regeneration of the bromine reagent, resulting in a bromine recycling rate of over 80%. By constructing a stepped separation system of gold selective reduction-silver distillation precipitation-palladium solvent extraction, efficient recovery of precious metals was achieved. This application significantly reduces processing costs through the recycling of bromine reagents, demonstrating significant industrial application value and broad market prospects.

[0071] It should be noted that this application is not limited to the above-described embodiments. The above embodiments are merely examples, and any embodiments with the same structure and effect as the technical concept within the scope of this application are included in the technical scope of this application. Furthermore, various modifications that can be conceived by those skilled in the art to the embodiments, and other ways of constructing by combining some of the constituent elements of the embodiments, without departing from the spirit of this application, are also included in the scope of this application.

Claims

1. A bromine-based leaching agent system, characterized in that, The bromine-based leaching agent system comprises a stable bromine-based strong oxidant, sodium bromide, and sodium iodide.

2. The bromine-based leaching agent system according to claim 1, characterized in that, The stable bromine-based strong oxidizing agent is one or more of dibromodimethylhydantoin, bromochlorodimethylhydantoin, and monobromodimethylhydantoin.

3. The bromine-based leaching agent system according to claim 1, characterized in that, The molar concentrations of the stable bromine-based strong oxidant, sodium bromide, and sodium iodide in the bromine-based leaching agent system are 0.04~0.2 mol / L, 0.2~1.2 mol / L, and 0.02~0.04 mol / L, respectively.

4. A method for recovering precious metals from waste circuit boards using a bromine-based leaching agent system, characterized in that, The treatment using the bromine-based leaching agent system according to any one of claims 1 to 3 includes the following steps: S1. The waste circuit boards are crushed and ground, then a mixed solution of sulfuric acid and strong oxidant is added and leached to obtain precious metal-enriched leaching residue. S2. Add a bromine-based leaching agent system to the precious metal enrichment leaching residue, adjust the pH value, then stir and leach, and separate the solid and liquid to obtain the precious metal separation raw solution; S3. Ferrous sulfate is added to the precious metal separation solution, and the potential of the redox reaction is monitored and controlled. After the redox reaction is completed, the solution is filtered by pressure to obtain gold powder and filtrate. S4. The filtrate is subjected to vacuum distillation and then centrifuged to obtain AgBr precipitate, gaseous bromine and distillate. The AgBr precipitate is purified by electrolysis to obtain silver powder, and the gaseous bromine is condensed to obtain liquid bromine for regenerating bromine-based oxidants. S5. The distillate is mixed with an extractant and extracted to obtain a loaded organic phase. The loaded organic phase is then mixed with a back-extractant and back-extracted to separate palladium.

5. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S2, the mass-to-volume ratio of the precious metal enrichment leaching residue and the bromine-based leaching agent system is 1:2 to 1:

4.

6. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S2, the pH value in the pH adjustment is 3.0~4.

5.

7. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S2, the temperature of the stirring leaching is 25~30℃, and the stirring leaching time is 14~24h.

8. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S4, the temperature of the vacuum distillation is 60~75℃, and the temperature of the condensation is 0~10℃.

9. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S3, 4.5-6 mol of ferrous sulfate is added to each mole of gold ions in the precious metal separation solution. The temperature of the redox reaction is 20-60℃, the reaction time is 20-60 min, and the redox potential is <200mV.

10. The method for recovering precious metals from waste circuit boards using the bromine-based leaching agent system according to claim 4, characterized in that, In step S5, the extractant is β-hydroxyoxime or triisobutylphosphine sulfide, and the volume ratio of the distillate to the extractant is 2:1; the back-extraction agent is thiourea solution or ammonia water, the molar concentration of the thiourea solution is 0.8~1.2 mol / L, the mass concentration of the ammonia water is 3~8%, and the volume ratio of the supported organic phase to the back-extraction agent is 1:1.

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