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Special Notice Expired 2 notices 1 document

Electrochemical Arsenic Immobilization for Sustainable Cobalt Production BA-1410-2

Solicitation BA-1410-2 Copied Notice ID f7b00b10ec254d71b6504977de994301 Copied ENERGY, DEPARTMENT OF — BATTELLE ENERGY ALLIANCE–DOE CNTR
SAM.gov
Posted
Jun 09, 2025
Deadline
Jul 09, 2025
Set-aside
None
NAICS
325180
PSC
6810

Summary

AI-generated · Aug 25, 2025

Extract cobalt from arsenic-rich sulfoarsenide minerals (e.g., cobaltite CoAsS) while immobilizing arsenic as scorodite in a single electrochemical system. The process uses a two-compartment cell separated by an anion-exchange or bipolar membrane, with a sulfuric acid electrolyte in the anode chamber, and operates at up to 70°C and ambient pressure without external chemical oxidants. Fe(II) is oxidized to Fe(III) at the anode to release cobalt and dissolve arsenic; As(III) forms As(V) and combines with Fe(III) to precipitate scorodite, yielding selective cobalt extraction and stabilized arsenic, with potential co-recovery of Cu, Ag, Au, and rare earth elements.

Licensed licensing opportunity through INL’s Technology Deployment program, which focuses on connecting industry partners with intellectual property to commercialize innovations. No procurement or external services are described; the objective is to license the technology and bring it to market. Suitable applications include domestic cobalt production for batteries and critical minerals supply chains, mining operations handling arsenide-rich ores, environmental remediation of arsenic-bearing wastes, and defense/energy security contexts, with a scalable, modular design suitable for integration into existing hydrometallurgical workflows.

Technology Summary This technology introduces an electrochemical method for extracting cobalt from sulfoarsenide minerals, such as cobaltite (CoAsS), while simultaneously immobilizing arsenic as scorodite (FeAsO?2H?O), a stable and low-solubility mineral form. The process enables cobalt production from arsenic-rich domestic sources by addressing both metal recovery and arsenic stabilization in a single system. The method operates at moderate temperatures (up to 70C) and under ambient pressure conditions, without the need for chemical oxidants or high-pressure equipment. Challenge Domestic sources of cobalt remain largely untapped due to the presence of arsenic, which complicates extraction and disposal. Existing approaches to arsenic immobilization are energy-intensive, require high-pressure systems, and often depend on hazardous oxidants such as hydrogen peroxide. These limitations present cost, safety, and environmental challenges to scaling up cobalt production from arsenide-rich ores. Solution The system consists of a two-compartment electrochemical cell separated by an anion exchange or bipolar membrane. In the anode compartment, a sulfuric acid electrolyte (pH < 1) contains sulfoarsenide minerals and ferrous sulfate (FeSO?). The electrochemical process proceeds as follows: Fe(II) is oxidized to Fe(III) at the anode via applied current. Fe(III) reacts with the mineral (e.g., CoAsS), releasing cobalt and dissolving arsenic. As(III) is oxidized to As(V) chemically or electrochemically. Fe(III) and As(V) combine to form scorodite, which precipitates from solution. This process allows for the selective extraction of cobalt while co-precipitating arsenic in a stable, low-mobility form. Key Advantages Integrated Processing: Combines metal extraction and arsenic immobilization in one step. Lower Input Requirements: Operates without external oxidants (e.g., H?O?) and under ambient pressure. Improved Environmental Management: Produces scorodite, which meets criteria for long-term arsenic stabilization. Reduced Energy Consumption: Eliminates the need for autoclaves and high-temperature hydrothermal systems. Scalable Design: Suitable for modular deployment and integration into hydrometallurgical workflows. Co-Recovery Potential: Supports extraction of additional metals, including Cu, Ag, Au, and rare earth elements. Market Applications This technology is relevant to several critical sectors that rely on secure and sustainable supply chains for cobalt and other metals: Cobalt and Critical Mineral Processing: Enables extraction from previously uneconomical arsenic-rich deposits. Battery Supply Chain: Supports domestic sourcing of cobalt for lithium-ion batteries in EVs and grid storage. Mining Operations: Applicable to mineral processors working with polymetallic ores in the Idaho Cobalt Belt and other arsenide-rich regions. Environmental Remediation: Potential applications in the treatment of arsenic-bearing waste from legacy mining sites. Defense and Energy Security: Supports national strategies for critical material independence and supply chain resilience. Licensing INL s Technology Deployment department focuses solely on licensing intellectual property and collaborating with industry partners who can commercialize our innovations. We do not engage in purchasing, procurement, or hiring external services for technology development. Our objective is to connect with companies interested in licensing and bringing our technologies to market.

From Special Notice posted on Jun 09, 2025

Technology Summary This technology introduces an electrochemical method for extracting cobalt from sulfoarsenide minerals, such as cobaltite (CoAsS), while simultaneously immobilizing arsenic as scorodite (FeAsO?2H?O), a stable and low-solubility mineral form. The process enables cobalt production from arsenic-rich domestic sources by addressing both metal recovery and arsenic stabilization in a single system. The method operates at moderate temperatures (up to 70C) and under ambient pressure conditions, without the need for chemical oxidants or high-pressure equipment. Challenge Domestic sources of cobalt remain largely untapped due to the presence of arsenic, which complicates extraction and disposal. Existing approaches to arsenic immobilization are energy-intensive, require high-pressure systems, and often depend on hazardous oxidants such as hydrogen peroxide. These limitations present cost, safety, and environmental challenges to scaling up cobalt production from arsenide-rich ores. Solution The system consists of a two-compartment electrochemical cell separated by an anion exchange or bipolar membrane. In the anode compartment, a sulfuric acid electrolyte (pH < 1) contains sulfoarsenide minerals and ferrous sulfate (FeSO?). The electrochemical process proceeds as follows: Fe(II) is oxidized to Fe(III) at the anode via applied current. Fe(III) reacts with the mineral (e.g., CoAsS), releasing cobalt and dissolving arsenic. As(III) is oxidized to As(V) chemically or electrochemically. Fe(III) and As(V) combine to form scorodite, which precipitates from solution. This process allows for the selective extraction of cobalt while co-precipitating arsenic in a stable, low-mobility form. Key Advantages Integrated Processing: Combines metal extraction and arsenic immobilization in one step. Lower Input Requirements: Operates without external oxidants (e.g., H?O?) and under ambient pressure. Improved Environmental Management: Produces scorodite, which meets criteria for long-term arsenic stabilization. Reduced Energy Consumption: Eliminates the need for autoclaves and high-temperature hydrothermal systems. Scalable Design: Suitable for modular deployment and integration into hydrometallurgical workflows. Co-Recovery Potential: Supports extraction of additional metals, including Cu, Ag, Au, and rare earth elements. Market Applications This technology is relevant to several critical sectors that rely on secure and sustainable supply chains for cobalt and other metals: Cobalt and Critical Mineral Processing: Enables extraction from previously uneconomical arsenic-rich deposits. Battery Supply Chain: Supports domestic sourcing of cobalt for lithium-ion batteries in EVs and grid storage. Mining Operations: Applicable to mineral processors working with polymetallic ores in the Idaho Cobalt Belt and other arsenide-rich regions. Environmental Remediation: Potential applications in the treatment of arsenic-bearing waste from legacy mining sites. Defense and Energy Security: Supports national strategies for critical material independence and supply chain resilience. Licensing INL s Technology Deployment department focuses solely on licensing intellectual property and collaborating with industry partners who can commercialize our innovations. We do not engage in purchasing, procurement, or hiring external services for technology development. Our objective is to connect with companies interested in licensing and bringing our technologies to market.

From Special Notice posted on Apr 15, 2026

Notice history

2
  1. Special Notice Posted Jun 09, 2025
  2. Special Notice LATEST Posted Apr 15, 2026
    • Response Deadline: Jul 09, 2025Jul 09, 2026

Details

Solicitation number BA-1410-2
Notice ID f7b00b10ec254d71b6504977de994301
Notice type Special Notice
Product / Service (PSC) 6810
NAICS 325180
Place of performance Idaho
Archive date Jul 24, 2025

Award Information

Not yet awarded

Documents

1
View on SAM.gov

Contacts

primary
Javier Martinez

Email

Agency

ENERGY, DEPARTMENT OF
ENERGY, DEPARTMENT OF
BATTELLE ENERGY ALLIANCE–DOE CNTR

Place of Performance

Idaho 83401
USA

Dates

Posted Jun 09, 2025 1 year ago
Last Updated Aug 06, 2026 1 day ago
Due Jul 09, 2025 1 year ago