Your browser does not fully support modern features. Please upgrade for a smoother experience.
Submitted Successfully!
Thank you for your contribution! You can also upload a video entry or images related to this topic. For video creation, please contact our Academic Video Service.
Version Summary Created by Modification Content Size Created at Operation
1 Heru Agung Saputra -- 800 2026-08-06 08:47:08 |
2 refs added Wenqian Li Meta information modification 800 2026-08-06 11:11:34 |

Video Upload Options

We provide professional Academic Video Service to translate complex research into visually appealing presentations. Would you like to try it?
Cite
If you have any further questions, please contact Encyclopedia Editorial Office.
Saputra, H.A.; Amrulloh, M.H.; Astarini, N.A.; Bahfie, F.; Birawidha, D.C.; Seo, K.; Huang, Y.; Astuti, W.; Hartati, Y.W. From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation. Encyclopedia. Available online: https://encyclopedia.pub/entry/59895 (accessed on 06 August 2026).
Saputra HA, Amrulloh MH, Astarini NA, Bahfie F, Birawidha DC, Seo K, et al. From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation. Encyclopedia. Available at: https://encyclopedia.pub/entry/59895. Accessed August 06, 2026.
Saputra, Heru Agung, Muhammad Hanif Amrulloh, Nadiya Ayu Astarini, Fathan Bahfie, David Candra Birawidha, Kyeong-Deok Seo, Yuanhui Huang, Widi Astuti, Yeni Wahyuni Hartati. "From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation" Encyclopedia, https://encyclopedia.pub/entry/59895 (accessed August 06, 2026).
Saputra, H.A., Amrulloh, M.H., Astarini, N.A., Bahfie, F., Birawidha, D.C., Seo, K., Huang, Y., Astuti, W., & Hartati, Y.W. (2026, August 06). From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation. In Encyclopedia. https://encyclopedia.pub/entry/59895
Saputra, Heru Agung, et al. "From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation." Encyclopedia. Web. 06 August, 2026.
Peer Reviewed
From Fundamentals to Industrial Prospects: Ion-Imprinted Polymers for Metal Ion Separation

Ion-imprinted polymers (IIPs) are advanced adsorbents featuring selective recognition cavities for targeted metal ion capture, offering a promising route to high-efficiency separation in extractive metallurgy. In the present work, the evolution, design principles, synthesis strategies, separation mechanisms, and practical applicability of IIPs for metal recovery from complex aqueous matrices are overviewed. Key material components, including functional monomers, crosslinkers, template ions, initiators, solvents, and support materials, are discussed in relation to adsorption capacity, selectivity, kinetics, stability, and recyclability. Major preparation routes, such as surface imprinting, bulk polymerization, in situ polymerization, and sol–gel methods, are critically compared to clarify their advantages and limitations. Recent applications for base metals, precious metals, and rare-earth elements demonstrate that IIPs can achieve high specificity and rapid equilibrium under optimized conditions. However, their translation from simulated solutions to real leachates remains constrained by interfering ions, organic contaminants, mass transfer resistance, incomplete template removal, and matrix complexity. Mitigation strategies, including sample pretreatment, improved polymer architecture, and hybrid supports, are therefore emphasized. Additionally, chemometric modelling, machine learning, or artificial intelligence-assisted design may be implemented to advance the prospects of IIPs in industry. Conclusively, IIPs represent a strong separation platform, yet industrial deployment requires robust validation with real feed streams and scalable regeneration protocols during column operation, as well as under chemically aggressive conditions at scale.

advanced material adsorption ion-imprinted polymer metal ion rare earth element separation
Various methods have been employed in extractive metallurgy, which are primarily categorized by physical and chemical techniques, such as pyrometallurgy, hydrometallurgy, and electrometallurgy [1][2][3][4][5][6][7]. Pyrometallurgy has been reported to be the most widely used method in extractive metallurgy. Perhaps its high throughput, speed, simplicity, and mature operations become the reasons [4][7][8][9][10]. Hydrometallurgy is valued for its selectivity and lower energy consumption and is increasingly used for low-grade and complex ores, as well as in the recycling industry. With the advantages of hydrometallurgy, the industry is gradually shifting toward hybrid approaches that integrate this technique for lower-grade deposits and to improve environmental compliance [5][7][11][12][13][14][15][16]. On the other hand, electrometallurgy is generally used for final refining to produce high-purity metals [6][7][17][18][19].
Hydrometallurgy is a rapidly evolving, multidisciplinary field that offers more sustainable solutions to meet future metal demand than traditional, energy-intensive smelting methods [5][7][12][20][21][22][23][24][25]. First, hydrometallurgy operates at relatively low temperatures, making it energy-efficient and implying lower greenhouse gas emissions. Surely, this is ideal for modern sustainability goals. Second, hydrometallurgy allows for precise selectivity and purity, often without the need for further refining. This advantage enables the extraction of metals from lean-grade and complex ores that are uneconomical to smelt. Third, hydrometallurgy is the most efficient technique for recovering critical metals from end-of-life electronics, making it a core technology for recycling and the circular economy. Last but not least, hydrometallurgy constantly introduces exciting, innovative technologies.
The hydrometallurgical process, which includes solvent extraction [26][27][28], ion exchange [29][30][31], cementation [32][33], precipitation [34][35][36][37], adsorption [38][39][40], and liquid membrane [41][42][43], is generally employed to concentrate the desired metal from the leach solution. The step is crucial because the initial leaching process often yields a pregnant leach solution with too many impurities to directly produce high-purity metal. Among the various methods available, adsorption is economical, highly efficient, and environmentally friendly [39][40][44][45]. A few decades ago, ion-imprinted polymers (IIPs) were first introduced as smart adsorbents with specific adsorption sites and used to recover various metal ions from aqueous solutions [46]. Today, IIP technology is expected to deliver a major breakthrough in separating critical elements from complex matrices in the extractive metallurgy industry. On this basis, the present work introduces IIPs as advanced adsorbent materials and seeks to determine the extent to which IIPs are applicable in separation technology.
Although many studies have reported the development of IIPs in the hydrometallurgical separation of metal ions, most focus on specific aspects or narrow topics [47][48][49][50][51]. As a few examples, Majalis et al. (2026) provided a theoretical and practical basis for developing advanced Li-IIPs to support future industrial-scale Li recovery [47]. Wu et al. (2022) provided the historical progress of IIPs in the removal of heavy metal ions from wastewater [48]. Keçili et al. (2025) reviewed recent advances in the production of environmentally friendly IIPs for the selective removal of metal pollutants in environmental samples [49]. Liang et al. (2025) reported development in IIP technology for rare-earth separation [50]. Similarly, Chen et al. (2026) systematically outlined recent advancements in ion-imprinting technology and its immense potential for the selective separation of rare-earth metals [51]. Unlike these works, our review provides a comprehensive overview of the current state of research on IIPs for metal ion separation. The discussion starts from the IIP evolution, the basic principles of IIPs, strategies in the IIP preparation, superiority of IIPs over other adsorbent materials, mechanism in the IIP-based metal ion separation, eluent-dependent behaviour towards template ion release, cutting-edge developments of IIPs in the extractive separation of metal ions, mitigation strategies in IIP practical applications, to IIP prospects in the extractive metallurgy industry.

References

  1. Demopoulos, G.P. From extractive metallurgy to materials engineering: Personal teaching and research perspective. Can. Metall. Q. 2014, 54, 129–135.
  2. Situmorang, E.; Lubis, F.; Kulsum, A.Y. New directions in mineral processing, extractive metallurgy, recycling and waste minimization: An EPD symposium in Honor of Patrick R. Taylor. Int. Geol. Rev. 2024, 67, 569–571.
  3. Toro, N.; Gálvez, E.; Jeldres, R.I. Recent Advances in Metallurgical Extractive Processes. Metals 2024, 14, 1263.
  4. Anderson, C.G. Pyrometallurgy. In Reference Module in Materials Science and Materials Engineering; Elsevier: Amsterdam, The Netherlands, 2016.
  5. Gunarathne, V.; Rajapaksha, A.U.; Vithanage, M.; Alessi, D.S.; Selvasembian, R.; Naushad, M.; You, S.; Oleszczuk, P.; Ok, Y.S. Hydrometallurgical processes for heavy metals recovery from industrial sludges. Crit. Rev. Environ. Sci. Technol. 2020, 52, 1022–1062.
  6. Anonymous. Electro-Metallurgy. Nature 1891, 43, 244–245.
  7. Haile, M.G.; Oladunni Oyelola, A.; Olufemi Aramide, F.; Ojo Seidu, S.; Akinlabi, O. Hydrometallurgical, pyrometallurgical and electrometallurgical extraction of niobium and tantalum: An overview. Miner. Process. Extr. Metall. Trans. Inst. Min. Metall. 2024, 134, 3–12.
  8. Nassaralla, C.L. Pyrometallurgy. In Encyclopedia of Materials: Science and Technology; Elsevier: Amsterdam, The Netherlands, 2001; pp. 7938–7941.
  9. Bellemans, I.; De Wilde, E.; Moelans, N.; Verbeken, K. Metal losses in pyrometallurgical operations—A review. Adv. Colloid Interface Sci. 2018, 255, 47–63.
  10. Islam, M.T.; Ali, A.; Abdul Qadir, S.; Shahid, M.; Shumon, R.; Monjurul Hasan, A.S.M.; Huda, N. Decarbonizing transport through circular battery solutions: Life cycle impacts of hydrometallurgy vs pyrometallurgy in NMC battery recycling. J. Power Sources 2025, 658, 238246.
  11. Saba-Bawazir, O.; Kamal, H.A.; Bin-AlShaibah, O.; Safa-Gamal, M.; da Silva Batalhão, A.C. Waste Printed Circuit Boards (WPCBs) of Mobile Phones in Hydrometallurgical Route: A Systematic Review. In Blending Approaches Towards Sustainability Focus; Earth and Environmental Sciences Library; Springer: Cham, Switzerland, 2025; pp. 33–66.
  12. Tao, Q. Hydrometallurgy. In The ECPH Encyclopedia of Mining and Metallurgy; Springer: Singapore, 2024; pp. 906–909.
  13. Binnemans, K.; Jones, P.T. The Twelve Principles of Circular Hydrometallurgy. J. Sustain. Metall. 2022, 9, 1–25.
  14. Davis, K.; Demopoulos, G.P. Hydrometallurgical recycling technologies for NMC Li-ion battery cathodes: Current industrial practice and new R&D trends. RSC Sustain. 2023, 1, 1932–1951.
  15. Petranikova, M.; Herdzik-Koniecko, I.; Steenari, B.-M.; Ekberg, C. Hydrometallurgical processes for recovery of valuable and critical metals from spent car NiMH batteries optimized in a pilot plant scale. Hydrometallurgy 2017, 171, 128–141.
  16. Chagnes, A. Advances in Hydrometallurgy; MDPI: Basel, Switzerland, 2020.
  17. Yude, S. Electrometallurgy. In The ECPH Encyclopedia of Mining and Metallurgy; Springer: Singapore, 2024; pp. 571–573.
  18. Evans, J.W. Introduction and the Significance of Electrometallurgy. In Reference Module in Materials Science and Materials Engineering; Elsevier: Amsterdam, The Netherlands, 2016.
  19. Tan, Y.; Yang, H.; Tian, G.; Yu, X.; Hu, J.; Wang, X.; Cheng, J.; Song, H. Research Progress and Trends in Iron Metal Purification Processes. Ind. Eng. Chem. Res. 2023, 62, 4817–4830.
  20. Shamsuddin, M. Physical Chemistry of Metallurgical Processes. In Hydrometallurgy; John Wiley & Sons, Inc.: Hoboken, NJ, USA, 2016; pp. 423–522.
  21. Anderson, C.G. Advances in Mineral Processing and Hydrometallurgy—3rd Edition. Metals 2025, 15, 1357.
  22. Espinosa, D.C.R.; de Oliveira, R.P.; Martins, T.A.G. Recycling Technologies—Hydrometallurgy. In Electronic Waste; John Wiley & Sons, Inc.: Hoboken, NJ, USA, 2022; pp. 165–187.
  23. Saidi, A.; El Khawaja, R.; Boffito, D.C. A Review of Traditional and Intensified Hydrometallurgy Techniques to Remove Chromium and Vanadium from Solid Industrial Waste. ACS Eng. Au 2023, 4, 49–70.
  24. Papagianni, S.; Moschovi, A.M.; Sakkas, K.M.; Chalaris, M.; Yakoumis, I. Preprocessing and Leaching Methods for Extraction of REE from Permanent Magnets: A Scoping Review. AppliedChem 2022, 2, 199–212.
  25. Atrees, M.S.; Mira, H.I.E.; Kawassik, Y.M.; Ali, M.E.M. Comparative Studies on Hydrometallurgy and Pyrometallurgy to the Extraction of Beryllium from Decrepitated Beryl from Wadi El Gemal Region, Eastern Desert, Egypt. J. Phys. Conf. Ser. 2022, 2305, 012034.
  26. Ritcey, G.M. Solvent extraction in hydrometallurgy: Present and future. Tsinghua Sci. Technol. 2006, 11, 137–152.
  27. Zhang, J.; Zhao, B.; Schreiner, B. Solvent Extraction in Metal Hydrometallurgy. In Separation Hydrometallurgy of Rare Earth Elements; Springer: Cham, Switzerland, 2016; pp. 55–78.
  28. Rydberg, J. Solvent Extraction Principles and Practice, Revised and Expanded; CRC Press: Boca Raton, FL, USA, 2004.
  29. Streat, M. Applications of Ion Exchange in Hydrometallurgy. In Ion Exchange: Science and Technology; Springer: Dordrecht, The Netherlands, 1986; pp. 449–461.
  30. Sole, K.C.; Mooiman, M.B.; Hardwick, E. Ion Exchange in Hydrometallurgical Processing: An Overview and Selected Applications. Sep. Purif. Rev. 2017, 47, 159–178.
  31. McKevitt, B. Ion Exchange for Hydrometallurgy. In Treatise on Process Metallurgy, Volume 2B; Elsevier: Amsterdam, The Netherlands, 2025; pp. 411–422.
  32. Hussain, J.; Sim, M.; Rosaiah, P.; Hussain, I. A Review of Sustainable Cementation Strategies for Precious Metal Recovery: Efficiency, Environmental Impact and Future Prospects. J. Hazard. Mater. Adv. 2026, 22, 101120.
  33. Xing, W.D.; Lee, M.S.; Choi, S.H. Separation of Ag(I) by Ion Exchange and Cementation from a Raffinate Containing Ag(I), Ni(II) and Zn(II) and Traces of Cu(II) and Sn(II). Processes 2018, 6, 112.
  34. Dutrizac, J.E. An Overview of Iron Precipitation in Hydrometallurgy. In Crystallization and Precipitation; Elsevier: Amsterdam, The Netherlands, 1987; pp. 259–283.
  35. Li, J.; Yang, Z.; Zhang, W.; Zhu, D.; Wu, J.; Liu, X.; Wang, Q.; Shi, M.; Yan, X.; Lin, Z. Magnetite precipitation approach for zinc hydrometallurgy: A microfluidic strategy. Environ. Sci. Nano 2024, 11, 819–830.
  36. Anawati, J.; Azimi, G. Separation of rare earth elements from a South American ionic clay lixivium by sequential precipitation. Hydrometallurgy 2022, 213, 105946.
  37. Li, S.; Sauber, M.E.; Sun, T.; Azimi, G. Iron, aluminum, and thorium impurity removal from a rare earth element pregnant leach solution using magnesium carbonate. Sci. Rep. 2025, 15, 15951.
  38. Peganov, V.A.; Molchanova, T.V. Sorption Processes in the Hydrometallurgy of Refractory Metals. At. Energy 2001, 90, 201–207.
  39. Saputra, H.A.; Putri, R.A.K.; Vivas, E.L.; Herman, H.; Daulay, A.; Mufakhir, F.R.; Supriyatna, Y.I.; Prasetia, H.; Suyanti, A.; Sudibyo, S.; et al. Recent advances in targeted adsorption of rare earth elements using metal-organic frameworks. Chem. Eng. J. 2026, 528, 172100.
  40. Saputra, H.A. Adsorption-Based Separation of Rare Earth Elements Using Metal-Organic Frameworks: Sustainable Critical Material Recovery. Sep. Purif. Rev. 2026, 55, 1–19.
  41. Belova, V.V.; Kostanyan, A.E.; Zakhodyaeva, Y.A.; Kholkin, A.I.; Logutenko, O.A. On the application of bulk-supported liquid membrane techniques in hydrometallurgy. Hydrometallurgy 2014, 150, 144–152.
  42. Parhi, P.K.; Cerretani, L. Supported Liquid Membrane Principle and Its Practices: A Short Review. J. Chem. 2012, 2013, 618236.
  43. Li, N.N.; Cahn, R.P.; Naden, D.; Lai, R.W.M. Liquid membrane processes for copper extraction. Hydrometallurgy 1983, 9, 277–305.
  44. Fouda-Mbanga, B.G.; Onotu, O.P.; Tywabi-Ngeva, Z. Advantages of the reuse of spent adsorbents and potential applications in environmental remediation: A review. Green Anal. Chem. 2024, 11, 100156.
  45. Badran, A.M.; Utra, U.; Yussof, N.S.; Bashir, M.J.K. Advancements in Adsorption Techniques for Sustainable Water Purification: A Focus on Lead Removal. Separations 2023, 10, 565.
  46. Nishide, H.; Deguchi, J.; Tsuchida, E. Selective Adsorption of Metal Ions on Crosslinked Poly(Vinylpyridine) Resin Prepared with a Metal Ion as a Template. Chem. Lett. 1976, 5, 169–174.
  47. Majalis, A.N.; Ningsih, S.; Azis, M.Y.; Rachmawati, R.; Zulfikar, M.A. Lithium extraction from its resources using functional materials based on lithium-ion imprinted polymers: A review. Kuwait J. Sci. 2026, 53, 100558.
  48. Wu, H.; Lin, G.; Liu, C.; Chu, S.; Mo, C.; Liu, X. Progress and challenges in molecularly imprinted polymers for adsorption of heavy metal ions from wastewater. Trends Environ. Anal. Chem. 2022, 36, e00178.
  49. Keçili, R.; Hussain, C.G.; Ghorbani-Bidkorpeh, F.; Hussain, C.M. Environmentally-friendly ion imprinted polymers (IIPs) towards metal pollutants in environmental samples: Recent advances and future prospects. TrAC Trends Anal. Chem. 2025, 184, 118132.
  50. Liang, B.; Zhu, P.; Gu, J.; Zeng, X.; Yuan, W.; Hu, H.; Huang, L.; Xiao, B. Advances in ion-imprinted polymer technology for rare earth element separation: A review. J. Rare Earths 2025, in press.
  51. Chen, T.; Liu, X.-q.; Yang, W.; Liu, Y.; Zhang, T.-a. Ion-imprinted polymer materials for sustainable recovery of scattered and rare earth metals from complex systems. Sustain. Mater. Technol. 2026, 48, e02034.
More
Upload a video for this entry
Information
Contributors MDPI registered users' name will be linked to their SciProfiles pages. To register with us, please refer to https://encyclopedia.pub/register : Heru Agung Saputra , Muhammad Hanif Amrulloh , , Fathan Bahfie , , Kyeong-Deok Seo , , Widi Astuti , Yeni Wahyuni Hartati
View Times: 19
Online Date: 06 Aug 2026
Notice
You are not a member of the advisory board for this topic. If you want to update advisory board member profile, please contact office@encyclopedia.pub.
OK
Confirm
Only members of the Encyclopedia advisory board for this topic are allowed to note entries. Would you like to become an advisory board member of the Encyclopedia?
Yes
No
${ textCharacter }/${ maxCharacter }
Submit
Cancel
There is no comment~
${ textCharacter }/${ maxCharacter }
Submit
Cancel
${ selectedItem.replyTextCharacter }/${ selectedItem.replyMaxCharacter }
Submit
Cancel
Confirm
Are you sure to Delete?
Yes No
Academic Video Service