[1] Bulatovic, S. M. (2007). Handbook of flotation reagents: chemistry, theory and practice: Volume 1: flotation of sulfide ores. Elsevier.
[2] Wills, B. A., & Finch, J. A. (2015).
Wills' mineral processing technology: an introduction to the practical aspects of ore treatment and mineral recovery. 8th ed. Oxford: Elsevier. doi:
https://doi.org/10.1016/C2010-0-65478-2
[3] Mohanraj, G. T., M. R. Rahman, S. B. Arya, R. Barman, P. Krishnendu, & Meena, S. S. (2022). Characterization study and recovery of copper from low grade copper ore through hydrometallurgical route.
Advanced Powder Technology, 33(1), 103382. doi:
https://doi.org/10.1016/j.apt.2021.12.001
[5] Apua, M. C., & Madiba, M. S. (2021). Leaching kinetics and predictive models for elements extraction from copper oxide ore in sulphuric acid.
Journal of the Taiwan Institute of Chemical Engineers,
121, 313-320. doi:
https://doi.org/10.1016/j.jtice.2021.04.005
[8] Xiao, W., Zhang, Z., Yang, J., Zhao, Y., Lai, C., Wang, H., Wang, Q., Fang, J., & Yang, S. (2024). Flotation separation mechanism of malachite from calcite using the pentyl xanthate as the collector.
Minerals Engineering,
206, 108540. doi:
https://doi.org/10.1016/j.mineng.2023.108540
[9] Feng, Q., W. Yang, S. Wen, H. Wang, W. Zhao, & Han, G. (2022). Flotation of copper oxide minerals: A review.
International Journal of Mining Science and Technology. 32(6), 1351-1364. doi:
https://doi.org/10.1016/j.ijmst.2022.09.011
[10] Han, G., S. Wen, H. Wang, & Feng, Q. (2021). Identification of copper-sulfide species on the cuprite surface and its role in sulfidization flotation.
Colloids and Surfaces A: Physicochemical and Engineering Aspects. 624, 26854. doi:
https://doi.org/10.1016/j.colsurfa.2021.126854
[11] Yin, W. Z., Q. Y. Sun, L. I. Dong, T. A. N. G. Yuan, Y. F. Fu, & Jin, Y. A. O. (2019). Mechanism and application on sulphidizing flotation of copper oxide with combined collectors.
Transactions of Nonferrous Metals Society of China, 29(1), 178-185. doi:
https://doi.org/10.1016/S1003-6326(18)64926-X
[13] Phetla, T. P., & Muzenda, E. (2010). A multistage sulphidisation flotation procedure for a low-grade malachite copper ore.
International Journal of Chemical, Molecular, Nuclear, Materials and Metallurgical Engineering. 4, 26-32. doi:
https://hdl.handle.net/10210/10951
[14] Masdarian, M., Azizi, A., & Bahri, Z. (2020). Mechanochemical sulfidization of a mixed oxide-sulphide copper ore by co-grinding with sulfur and its effect on the flotation efficiency.
Chinese Journal of Chemical Engineering,
28(3), 743-748. doi:
https://doi.org/10.1016/j.cjche.2019.10.005
[15] Wang, H., S. Wen, G. Han, Y. He, and Q. Feng. 2022. Adsorption behavior and mechanism of copper ions in the sulfidization flotation of malachite.
International Journal of Mining Science and Technology. 32(4):897-906. doi:
https://doi.org/10.1016/j.ijmst.2022.06.006
[16] Maleki, H., Noparast, M., Chehreghani, S., Mirmohammadi, M. S., & Rezaei, A. (2023). Optimization of flotation of the Qaleh Zari mine oxidized copper ore sample by the sequential sulfidation approach using the response surface method technique.
Rudarsko-geološko-naftni zbornik,
38(1), 59-68. doi:
https://doi.org/10.17794/rgn.2023.1.6
[17] Oumesaoud, H., Faouzi, R., Naji, K., Benzakour, I., Faqir, H., Oukhrib, R., & Aboulhassan, M. A. (2025). Enhancing flotation of oxidized copper ores through the integration of artificial neural network and the design of experiments approach for process optimization.
Case Studies in Chemical and Environmental Engineering,
11, 101064. doi:
https://doi.org/10.1016/j.cscee.2024.101064
[18] Wang, L., Li, Z., Wang, H., Wei, B., Feng, Q., & Liu, D. (2025) Resource utilization of copper slag: The enhanced sulfidization mechanism of Pb
2+/NH
4+ system on copper oxide in copper slag and its impact on flotation performance,
Minerals Engineering, 234, 109786. doi:
https://doi.org/10.1016/j.mineng.2025.109786
[19] Wei, X., Sun, Y., Gao, P., & Wei, X. (2025). Sulfidation roasting-flotation process for cuprite recovery and kinetics analysis.
Chemical Engineering Journal, 168226. doi:
https://doi.org/10.1016/j.cej.2025.168226
[20] Reed, S. J. B. (2005). Electron microprobe analysis and scanning electron microscopy in geology. Cambridge university press.
[22] Zhao, D., Zhang, Y., & Essene, E. J. (2015). Electron probe microanalysis and microscopy: Principles and applications in characterization of mineral inclusions in chromite from diamond deposit.
Ore Geology Reviews,
65, 733-748. doi:
https://doi.org/10.1016/j.oregeorev.2014.09.020
[23] McGee, J. J., & Keil, K. (2001). Application of electron probe microanalysis to the study of geological and planetary materials.
Microscopy and Microanalysis,
7(2), 200-210. doi:
https://doi.org/10.1007/S100050010081
[25] Barros, K. S., Vielmo, V. S., Moreno, B. G., Riveros, G., Cifuentes, G., & Bernardes, A. M. (2022). Chemical composition data of the main stages of copper production from sulfide minerals in Chile: A review to assist circular economy studies.
Minerals,
12(2), 250. doi:
https://doi.org/10.3390/min12020250
[26] Marković, Z. S., Magdalinović, N. M., & Tramić, M. Ž. (2020). Flotation rates and particle size distribution in the copper ore flotation plant ‘V. Krivelj’. In Mine Planning and Equipment Selection 1997 (pp. 781-784). CRC Press.
[28] Canpolat, G., & Ziyadanoğullari, R. (2023). Recovery of copper from complex copper oxide ore by flotation and leaching methods. Advanced Physical Research, 5(2), 103-116. doi:
[29] Salajegheh, E., Parsapour, G., & Akbari, A. (2022). An increase in the Copper Recovery of the Sarcheshmeh Copper Complex through Reagent Modifications.
Iranian Journal of Chemistry and Chemical Engineering,
41(11), 3798-3804. doi:
https://doi.org/10.30492/ijcce.2022.529780.4713
[30] Dhar, P., Havskjold, H., Thornhill, M., Roelants, S., Soetaert, W., Kota, H. R., & Chernyshova, I. (2021). Toward green flotation: Interaction of a sophorolipid biosurfactant with a copper sulfide.
Journal of Colloid and Interface Science,
585, 386-399. doi:
https://doi.org/10.1016/j.jcis.2020.11.079
[31] Tanaka, Y., Miki, H., Suyantara, G. P. W., Aoki, Y., Okamoto, H., Ura, K., & Hirajima, T. (2023). Effect of pH and Precipitations on Copper–Molybdenum Rougher Flotation in Seawater.
Materials Transactions,
64(6), 1225-1231. doi:
https://doi.org/10.2320/matertrans.M-M2023805
[32] Bag, B., Das, B., & Mishra, B. K. (2011). Geometrical optimization of xanthate collectors with copper ions and their response to flotation. Minerals Engineering, 24(8), 760-765. doi:
https://doi.org/10.1016/j.mineng.2011.01.006
[35] Han, G., Wen, S., Wang, H., & Feng, Q. (2021). Surface sulfidization mechanism of cuprite and its response to xanthate adsorption and flotation performance.
Minerals Engineering,
169, 106982. doi:
https://doi.org/10.1016/j.mineng.2021.106982
[36] Jeldres, R. I., Uribe, L., Cisternas, L. A., Gutierrez, L., Leiva, W. H., & Valenzuela, J. (2019). The effect of clay minerals on the process of flotation of copper ores-A critical review.
Applied Clay Science,
170, 57-69. doi:
https://doi.org/10.1016/j.clay.2019.01.013
[37] Tijsseling, L. T., Dehaine, Q., Rollinson, G. K., & Glass, H. J. (2019). Flotation of mixed oxide sulphide copper-cobalt minerals using xanthate, dithiophosphate, thiocarbamate and blended collectors.
Minerals Engineering,
138, 246-256. doi:
https://doi.org/10.1016/j.mineng.2019.04.022
[38] Dhar, P., Thornhill, M., & Kota, H. R. (2019). Comparison of single and mixed reagent systems for flotation of copper sulphides from Nussir ore.
Minerals Engineering,
142, 105930. doi:
https://doi.org/10.1016/j.mineng.2019.105930
[39] Maree, W., Kloppers, L., Hangone, G., & Oyekola, O. (2017). The effects of mixtures of potassium amyl xanthate (PAX) and isopropyl ethyl thionocarbamate (IPETC) collectors on grade and recovery in the froth flotation of a nickel sulfide ore.
south african journal of chemical engineering,
24(1), 116-121. doi:
https://doi.org/10.1016/j.sajce.2017.07.001
[40] Shamsi, M., Noaparast, M., Shafaie, S. Z., & Gharabaghi, M. (2016). Synergism effect of collectors on copper recovery in flotation of copper smelting slags.
Geosystem Engineering,
19(2), 57-68. doi:
https://doi.org/10.1080/12269328.2015.1087349
[41] Zou, S., Wang, S., Ma, X., & Zhong, H. (2022). Underlying synergistic collection mechanism of an emerging mixed reagent scheme in chalcopyrite flotation.
Journal of Molecular Liquids,
364, 119948. doi:
https://doi.org/10.1016/j.molliq.2022.119948
[42] Ackerman, P. K., Harris, G. H., Klimpel, R. R., & Aplan, F. F. (1987). Evaluation of flotation collectors for copper sulfides and pyrite, III. Effect of xanthate chain length and branching. International journal of mineral processing, 21(1-2), 141-156. doi:
https://doi.org/10.1016/0301-7516(87)90011-1
[43] Wei, X., Sun, Y., Wei, X., & Gao, P. (2026). Sulfidation reconstruction methods for improving the floatability of copper oxide minerals: A review.
Minerals Engineering,
235, 109843. doi:
https://doi.org/10.1016/j.mineng.2025.109843
[44] Özün, S., & Ergen, G. (2019). Determination of optimum parameters for flotation of galena: Effect of chain length and chain structure of xanthates on flotation recovery. ACS omega, 4(1), 1516-1524. doi.
https://doi.org/10.1021/acsomega.8b02841
[45] Asadi, M., Soltani, F., Mohammadi, M. R. T., Khodadadi, D. A., & Abdollahy, M. (2019). A successful operational initiative in copper oxide flotation: Sequential sulphidisation-flotation technique.
Physicochemical Problems of Mineral Processing,
55. doi:
https://doi.org/10.5277/ppmp18137
[46] Corin, K. C., Kalichini, M., O‘Connor, C. T., & Simukanga, S. (2017). The recovery of oxide copper minerals from a complex copper ore by sulphidisation.
Minerals engineering,
102, 15-17. doi:
https://doi.org/10.1016/j.mineng.2016.11.011
[47] Wang, H., Wen, S., Han, G., & Feng, Q. (2021). Modification of malachite surfaces with lead ions and its contribution to the sulfidization flotation.
Applied Surface Science,
550, 149350. doi:
https://doi.org/10.1016/j.apsusc.2021.149350
[48] Bazmandeh, M., & Sam, A. (2021). Improvement of copper sulfide flotation using a new collector in an optimized addition scheme.
Physicochemical Problems of Mineral Processing,
57(6), 71-79. doi:
https://doi.org/10.37190/ppmp/142503