Assessment of Gold and Mercury Losses in Artisanal Mining Operations in Korokpa, Minna, Niger State
Abstract
1. Introduction
1.1. Artisanal Gold Mining in Nigeria
1.2. Overview of Efforts to Introduce Hg-Free Au Ore Processing
1.3. Overview of AGM and Processing Activities in Korokpa
2. Materials and Methods
2.1. Procedure for Assessing Mercury Balance
- The mass of the initial Hg added to the concentrate to amalgamate the liberated Au particles was determined using a digital pocket scale capable of measuring 200 g/0.01 g. This was done when the amalgam and doré were cool, and the scale reading remained stable, with no wind-induced fluctuations. The measurements were repeated twice to ensure accuracy.
- The amalgam was pressed in a fabric, and the filtered excess liquid Hg was collected in a clean container (≈100 mL) of known mass. This Hg recovered was also weighed and recorded. Typically, miners place the liquid Hg + amalgam in a piece of fabric and squeeze out excess Hg, leaving behind a solid (pasty) Au amalgam.
- The amount of Hg lost to the atmosphere through volatilisation was determined by weighing and recording the amalgam’s mass before burning, then measuring the mass of the doré (Au sponge) remaining. The difference between the two masses indicates the amount of Hg volatilised.
- The ratio of Hg lost to Au produced is obtained thus:
2.2. Procedure for Establishing Au Balance
2.3. Procedure for the Grain-Size Analysis
3. Results and Discussion
3.1. Mercury Balance
3.2. Other Environmental Impacts
3.3. Gold Balance
3.4. Grain-Size Analysis
3.5. Chemical Analysis of the Tailing
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
| Assumed Concentrate Mass = % of Feed Mass | Assumed Concentrate Mass in kg | Calculated Concentrate Grade (ppm) | Tailing Mass | Au Recovery (%) = | Absolute Variation (%) |
|---|---|---|---|---|---|
| 0 | Baseline | 673.0 | * 42.7 | 0 | |
| 1 | 6.73 | 75.0 | 666.3 | 43.1 | 0.4 |
| 1.5 | 10.1 | 50.3 | 662.9 | 43.4 | 0.7 |
| 2 | 13.5 | 38.0 | 659.5 | 43.7 | 1.0 |
| 3 | 20.2 | 25.7 | 652.8 | 44.3 | 1.6 |
| 5 | 33.7 | 15.8 | 639.4 | 45.4 | 2.7 |
| 10 | 67.3 | 8.40 | 605.7 | 48.3 | 5.6 |
References
- Bansah, K.J.; Arthur-Holmes, F.; Assan, E. Climate Induced Transformation of Agriculture to Artisanal Mining Economy in Dry Regions. J. Rural Stud. 2023, 99, 11–19. [Google Scholar] [CrossRef]
- Hilson, G. Artisanal and Small-Scale Mining and Agriculture: Exploring Their Links in Rural Sub-Saharan Africa; International Institute for Environment and Development: London, UK, 2016; ISBN 978-1-78431-329-6. [Google Scholar]
- Anene, N.C.; Dangulbi, B.M.; Veiga, M.M. Assessment of Gold and Mercury Losses in an Artisanal Gold Mining Site in Nigeria and Its Implication on the Local Economy and the Environment. Minerals 2024, 14, 1131. [Google Scholar] [CrossRef]
- Odukoya, A.M.; Uruowhe, B.; Watts, M.J.; Hamilton, E.M.; Marriott, A.L.; Alo, B.; Anene, N.C. Assessment of Bioaccessibility and Health Risk of Mercury within Soil of Artisanal Gold Mine Sites, Niger, North-Central Part of Nigeria. Environ. Geochem. Health 2022, 44, 893–909. [Google Scholar] [CrossRef]
- Veiga, M.M.; Gunson, A.J. Gravity Concentration in Artisanal Gold Mining. Minerals 2020, 10, 1026. [Google Scholar] [CrossRef]
- Gottesfeld, P.; Tirima, S.; Anka, S.M.; Fotso, A.; Nota, M.M. Reducing Lead and Silica Dust Exposures in Small-Scale Mining in Northern Nigeria. Ann. Work Expo. Health 2019, 63, 1–8. [Google Scholar] [CrossRef]
- Federal Government of Nigeria. Federal Ministry of Environment National Action Plan for the Reduction and Eventual Elimination of Mercury Use in Artisanal and Small-Scale Gold Mining in Nigeria; Federal Ministry of Environment (FME), Federal Government of Nigeria: Abuja, Nigeria, 2021; pp. 1–174. [Google Scholar]
- SWISSAID African Gold Report: Nigeria. Available online: https://africangoldreport.org/nigeria (accessed on 3 January 2026).
- Segilola Resources Operating Limited (SROL) About Us: Welcome to Segilola Resources Operating Limited. Available online: https://srol.com.ng/about-us/ (accessed on 3 January 2026).
- Dooyema, C.A.; Neri, A.; Lo, Y.-C.; Durant, J.; Dargan, P.I.; Swarthout, T.; Biya, O.; Gidado, S.O.; Haladu, S.; Sani-Gwarzo, N.; et al. Outbreak of Fatal Childhood Lead Poisoning Related to Artisanal Gold Mining in Northwestern Nigeria, 2010. Environ. Health Perspect. 2012, 120, 601–607. [Google Scholar] [CrossRef]
- Darma, A.I.; Ibrahim, S.; Sani, A. The Impact of Gold Ore Mining on Total Lead (Pb) Concentration in Some Mining and Residential Communities in Zamfara State, Nigeria. Dutse J. Pure Appl. Sci. 2022, 8, 43–52. [Google Scholar] [CrossRef]
- Hilson, G.; McQuilken, J. Four Decades of Support for Artisanal and Small-Scale Mining in Sub-Saharan Africa: A Critical Review. Extr. Ind. Soc. 2014, 1, 104–118. [Google Scholar] [CrossRef]
- Keane, S.; Bernaudat, L.; Davis, K.J.; Stylo, M.; Mutemeri, N.; Singo, P.; Twala, P.; Mutemeri, I.; Nakafeero, A.; Etui, I.D. Mercury and Artisanal and Small-Scale Gold Mining: Review of Global Use Estimates and Considerations for Promoting Mercury-Free Alternatives. Ambio 2023, 52, 833–852. [Google Scholar] [CrossRef] [PubMed]
- Mahlatsi, S.; Guest, R. The iGoli Mercury-Free Gold Extraction Process. Urban Health Dev. Bull. 2003, 6, 62–63. [Google Scholar]
- Ugeh, P. Nigeria: FG Receives Machines for Safer Mining in Zamfara. Available online: https://allafrica.com/stories/201309060312.html#:~:text=For%20better%20understanding%20and%20active,original%20article%20on%20This%20Day (accessed on 28 August 2025).
- Smith, N.M. “Our Gold Is Dirty, but We Want to Improve”: Challenges to Addressing Mercury Use in Artisanal and Small-Scale Gold Mining in Peru. J. Clean. Prod. 2019, 222, 646–654. [Google Scholar] [CrossRef]
- Alves, W.; Ferreira, P.; Araújo, M. Mining Co-Operatives: A Model to Establish a Network for Sustainability. J. Co-op. Organ. Manag. 2019, 7, 51–63. [Google Scholar] [CrossRef]
- Veiga, M.M.; Angeloci-Santos, G.; Meech, J.A. Review of Barriers to Reduce Mercury Use in Artisanal Gold Mining. Extr. Ind. Soc. 2014, 1, 351–361. [Google Scholar] [CrossRef]
- Akinloye, H.T.; Hammed, Y. Characterization and Determination of Liberation Size of Maitumbi Gold Ore. Niger. J. Eng. Sci. Res. NIJESR 2024, 7, 9–15. [Google Scholar]
- Baawuah, E.; Addai-Mensah, J.; Skinner, W. Pushing the Frontiers of Ultrafine Crushing and the Impact on Comminution Energy and Mineral Liberation. Miner. Eng. 2025, 231, 109430. [Google Scholar] [CrossRef]
- Klein, B.; Wang, C.; Nadolski, S. Energy-Efficient Comminution: Best Practices and Future Research Needs. In Energy Efficiency in the Minerals Industry. Green Energy and Technology; Awuah-Offei, K., Ed.; Springer: Cham, Switzerland, 2018; pp. 197–211. [Google Scholar]
- González-Vásquez, R.; García-Martínez, M.J.; Bolonio, D. Investigation of Gold Recovery and Mercury Losses in Whole Ore Amalgamation: Artisanal Gold Mining in Nambija, Ecuador. Minerals 2023, 13, 1396. [Google Scholar] [CrossRef]
- mDawod Corporation Gold Price Today. Available online: https://pricegold.net/2025/may/ (accessed on 31 August 2025).
- Altun, O.; Altun, D. Estimation of Mineral Liberation Distribution Functions to Be Used in Modelling of Impact and Attrition Milling. Miner. Eng. 2021, 173, 107236. [Google Scholar] [CrossRef]
- UNEP. Estimating Mercury Use and Documenting Practices in Artisanal and Small-Scale Gold Mining: Methods and Tools Version 1.0; United Nations Environment Program Global Mercury Partnership: Nairobi, Kenya, 2018; ISBN 978-0-9939459-8-4. [Google Scholar]
- Stocklin-Weinberg, R.; Veiga, M.M.; Marshall, B.G. Training Artisanal Miners: A Proposed Framework with Performance Evaluation Indicators. Sci. Total Environ. 2019, 660, 1533–1541. [Google Scholar] [CrossRef] [PubMed]
- Cordy, P.; Veiga, M.; Crawford, B.; Garcia, O.; Gonzalez, V.; Moraga, D.; Roeser, M.; Wip, D. Characterization, Mapping, and Mitigation of Mercury Vapour Emissions from Artisanal Mining Gold Shops. Environ. Res. 2013, 125, 82–91. [Google Scholar] [CrossRef]
- Gibb, H.; O’Leary, K.G. Mercury Exposure and Health Impacts among Individuals in the Artisanal and Small-Scale Gold Mining Community: A Comprehensive Review. Environ. Health Perspect. 2014, 122, 667–672. [Google Scholar] [CrossRef] [PubMed]
- Yoshimura, A.; Suemasu, K.; Veiga, M.M. Estimation of Mercury Losses and Gold Production by Artisanal and Small-Scale Gold Mining (ASGM). J. Sustain. Metall. 2021, 7, 1045–1059. [Google Scholar] [CrossRef]
- Velásquez-López, P.C.; Veiga, M.M.; Hall, K. Mercury Balance in Amalgamation in Artisanal and Small-Scale Gold Mining: Identifying Strategies for Reducing Environmental Pollution in Portovelo-Zaruma, Ecuador. J. Clean. Prod. 2010, 18, 226–232. [Google Scholar] [CrossRef]
- Balzino, M.; Seccatore, J.; Marin, T.; De Tomi, G.; Veiga, M.M. Gold Losses and Mercury Recovery in Artisanal Gold Mining on the Madeira River, Brazil. J. Clean. Prod. 2015, 102, 370–377. [Google Scholar] [CrossRef]
- Oramah, I.T.; Richards, J.P.; Summers, R.; Garvin, T.; McGee, T. Artisanal and Small-Scale Mining in Nigeria: Experiences from Niger, Nasarawa and Plateau States. Extr. Ind. Soc. 2015, 2, 694–703. [Google Scholar] [CrossRef]
- Plumlee, G.S.; Durant, J.T.; Morman, S.A.; Neri, A.; Wolf, R.E.; Dooyema, C.A.; Hageman, P.L.; Lowers, H.A.; Fernette, G.L.; Meeker, G.P.; et al. Linking Geological and Health Sciences to Assess Childhood Lead Poisoning from Artisanal Gold Mining in Nigeria. Environ. Health Perspect. 2013, 121, 744–750. [Google Scholar] [CrossRef] [PubMed]
- Donkor, A.K.; Ghoveisi, H.; Bonzongo, J.-C.J. Use of Metallic Mercury in Artisanal Gold Mining by Amalgamation: A Review of Temporal and Spatial Trends and Environmental Pollution. Minerals 2024, 14, 555. [Google Scholar] [CrossRef]
- Hu, H.; Lin, H.; Zheng, W.; Tomanicek, S.J.; Johs, A.; Feng, X.; Elias, D.A.; Liang, L.; Gu, B. Oxidation and Methylation of Dissolved Elemental Mercury by Anaerobic Bacteria. Nat. Geosci. 2013, 6, 751–754. [Google Scholar] [CrossRef]
- Alencar Meira Da Silva, H.; Davée Guimarães, J.R. Mercury Cyanide Complexes and Their Relevance as Environmental Contaminants. Chemosphere 2024, 350, 141054. [Google Scholar] [CrossRef]
- Amadi, A.N.; Ebieme, E.E.; Musa, A.; Olashinde, P.I.; Ameh, I.M.; Shuaibu, A.M. Utility of Pollution Indices in Assessment of Soil Quality around Madaga Gold Mining Site, Niger State, North-Central Nigeria. Ife J. Sci. 2017, 19, 417–430. [Google Scholar] [CrossRef]
- Uriah, L.; Kenneth, T.; Gusikit, R.; Ayuba, M. Lead and Mercury Contamination Associated with Artisanal Gold Mining in Anka, Zamfara State, North Western Nigeria: The Continued Unabated Zamfara Lead Poisoning. J. Earth Sci. Eng. 2013, 3, 764–775. [Google Scholar]
- Sani, A.H.; Musa, A.; Achimugu, M.D. Assessment of Heavy Metal Pollution of Drinking Water Sources and Staple Food Cultivars around Artisanal Mining Site in Igade-Mashegu, Niger State, Nigeria. World J. Biol. Pharm. Health Sci. 2023, 14, 306–319. [Google Scholar] [CrossRef]
- Wang, J.; Feng, X.; Anderson, C.W.N.; Zhu, W.; Yin, R.; Wang, H. Mercury Distribution in the Soil–Plant–Air System at the Wanshan Mercury Mining District in Guizhou, Southwest China. Environ. Toxicol. Chem. 2011, 30, 2725–2731. [Google Scholar] [CrossRef]
- Ssenku, J.E.; Naziriwo, B.; Kutesakwe, J.; Mustafa, A.S.; Kayeera, D.; Tebandeke, E. Mercury Accumulation in Food Crops and Phytoremediation Potential of Wild Plants Thriving in Artisanal and Small-Scale Gold Mining Areas in Uganda. Pollutants 2023, 3, 181–196. [Google Scholar] [CrossRef]
- Eboigbe, E.O.; Veerasamy, N.; Odukoya, A.M.; Anene, N.C.; Sonke, J.E.; Sakisaka Méndez, S.; McLagan, D.S. Mercury Contamination in Staple Crops Impacted by Artisanal Small-Scale Gold Mining (ASGM): Stable Hg Isotopes Demonstrate Dominance of Atmospheric Uptake Pathway for Hg in Crops. Biogeosciences 2025, 22, 5591–5605. [Google Scholar] [CrossRef]
- Lepak, R.F.; Janssen, S.E.; Yin, R.; Krabbenhoft, D.P.; Ogorek, J.M.; DeWild, J.F.; Tate, M.T.; Holsen, T.M.; Hurley, J.P. Factors Affecting Mercury Stable Isotopic Distribution in Piscivorous Fish of the Laurentian Great Lakes. Environ. Sci. Technol. 2018, 52, 2768–2776. [Google Scholar] [CrossRef] [PubMed]
- Stuckler, D.; Basu, S.; McKee, M.; Lurie, M. Mining and Risk of Tuberculosis in Sub-Saharan Africa. Am. J. Public Health 2011, 101, 524–530. [Google Scholar] [CrossRef]
- Abiola, O.; Philips, F.; Oluwafemi, F. Geochemical Characterization of Nasko Gold Deposits, North-Western Nigeria. J. Appl. Geochem. 2017, 19, 277–288. [Google Scholar]
- Joseph, I.A.; Eterigbo, E.J.; Okafor, J.O. Characterization of Selected Ore Deposits for The Determination of Elements and Oxides Composition of Gold in Niger State for Industrial Application; Federal University of Technology Minna: Minna, Nigeria, 2019; pp. 55–65. [Google Scholar]
- Melodi, M.M.; Gbolagade, M.A.; Amigun, J.O.; Alaba, O.C. Statistical Investigation of the Relationship between Gold and Associate Minerals: A Case Study of Kagara Area of Niger State Nigeria Soil. Int. J. Eng. Adv. Technol. Stud. 2023, 11, 1–18. [Google Scholar] [CrossRef]
- Animashaun, I.M.; Oguntunde, P.G.; Akinwumiju, A.S.; Olubanjo, O.O. Rainfall Analysis over the Niger Central Hydrological Area, Nigeria: Variability, Trend, and Change Point Detection. Sci. Afr. 2020, 8, e00419. [Google Scholar] [CrossRef]
- Ummel, M.; Schulz, Y. On the Trail of African Gold: Quantifying Production and Trade to Combat Illicit Flows; SWISSAID: Bern, Switzerland, 2024; p. 138. [Google Scholar]
- de Andrade Lima, L.R.P.; Bernardez, L.A.; Barbosa, L.A.D. Characterization and Treatment of Artisanal Gold Mine Tailings. J. Hazard. Mater. 2008, 150, 747–753. [Google Scholar] [CrossRef]
- Zhao, K.; Wu, F.; Cheng, X.; Cheng, S.; Wu, J.; He, Y.; Wang, C.; Lkebir, N.; Cui, S.; Hu, P.; et al. Trace Element Compositions of Galena and Cerussite from the Bou Dahar MVT District, Morocco: Insights from LA-ICP-MS Analyses. Minerals 2024, 14, 748. [Google Scholar] [CrossRef]
- Bohre, A.; Avasthi, K.; Pet’kov, V.I. Vitreous and Crystalline Phosphate High Level Waste Matrices: Present Status and Future Challenges. J. Ind. Eng. Chem. 2017, 50, 1–14. [Google Scholar] [CrossRef]











| Operation | Feed Mass (kg) | Concentrate Mass (kg) | Doré (g) | Hg Added (g) | Hg Recovered (g) | Amalgam Mass (g) | Hg Lost Volatilised (g) | * Hg in Tailings (g) | %Hg in Amalgam | %Hg Recovered | %Hg Volatilised | %Hg in Tailings | %Total Hg Lost | Hglost:Auproduced |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| AVERAGE | 673 | 11.4 | 0.58 | 3.39 | 2.25 | 1.23 | 0.64 | 0.50 | 49.3 | 65.8 | 17.6 | 16.6 | 34.2 | 2.57 |
| ST DEV | 559 | 9.34 | 0.62 | 1.32 | 1.02 | 1.26 | 0.68 | 0.25 | 9.25 | 15.7 | 14.3 | 9.78 | 15.7 | 1.13 |
| 2 × St Dev | 1117 | 18.7 | 1.23 | 2.63 | 2.04 | 2.52 | 1.37 | 0.51 | 18.5 | 31.4 | 28.6 | 19.6 | 31.4 | 2.26 |
| S/N | Feed Au (ppm) | Tailing Au (ppm) | %Au Recovery |
|---|---|---|---|
| Average | 1.74 | 1.00 | 42.7 |
| StDev | 2.03 | 1.69 | 21.8 |
| 2 × StDev | 4.06 | 3.38 | 43.5 |
| Element Grades (ppm) | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Fraction Sizes | Au | Ag | Pb | Cu | Zn | S | Ce | P | La | Th |
| +1.18 | 1.78 | 1.56 | 27.6 | 27.8 | 12.0 | 220 | 9.59 | 80.0 | 2.56 | 0.68 |
| −1.18 + 0.6 | 1.51 | 3.48 | 19.7 | 22.7 | 14.0 | 360 | 15.1 | 90.0 | 3.09 | 0.87 |
| −0.6 + 0.3 | 0.72 | 3.16 | 26.3 | 23.7 | 15.0 | 190 | 21.1 | 80.0 | 4.31 | 1.15 |
| −0.3 + 0.15 | 0.67 | 3.26 | 31.5 | 26.0 | 16.0 | 280 | 24.5 | 80.0 | 5.44 | 1.58 |
| −0.15 + 0.074 | 0.85 | 6.35 | 50.0 | 37.7 | 22.0 | 400 | 34.5 | 110 | 8.46 | 2.43 |
| −0.074 + 0.038 | 1.41 | 11.4 | 73.7 | 56.2 | 39.0 | 410 | 49.0 | 230 | 13.8 | 4.98 |
| −0.038 | 2.39 | 10.2 | 119.0 | 158 | 128.0 | 440 | 95.9 | 350 | 33.5 | 11.7 |
| Average Grade | 1.03 | 4.83 | 40.2 | 37.3 | 24.9 | 305 | 29.7 | 116 | 7.60 | 2.38 |
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Anene, N.C.; Veiga, M.M.; Kullokom, J.E.; Klein, B. Assessment of Gold and Mercury Losses in Artisanal Mining Operations in Korokpa, Minna, Niger State. Minerals 2026, 16, 384. https://doi.org/10.3390/min16040384
Anene NC, Veiga MM, Kullokom JE, Klein B. Assessment of Gold and Mercury Losses in Artisanal Mining Operations in Korokpa, Minna, Niger State. Minerals. 2026; 16(4):384. https://doi.org/10.3390/min16040384
Chicago/Turabian StyleAnene, Nnamdi C., Marcello M. Veiga, John E. Kullokom, and Bern Klein. 2026. "Assessment of Gold and Mercury Losses in Artisanal Mining Operations in Korokpa, Minna, Niger State" Minerals 16, no. 4: 384. https://doi.org/10.3390/min16040384
APA StyleAnene, N. C., Veiga, M. M., Kullokom, J. E., & Klein, B. (2026). Assessment of Gold and Mercury Losses in Artisanal Mining Operations in Korokpa, Minna, Niger State. Minerals, 16(4), 384. https://doi.org/10.3390/min16040384

