Mechanism of Imidazole Collectors in the Hydrophobic Agglomeration and Flotation Behavior of Quartz
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials and Reagents
2.2. Flotation Experiments
2.3. Online Particle-Bubble Monitoring (PBM)
2.4. Fluorescence Measurements
2.5. Zeta Potential Measurements
2.6. FTIR Measurements
2.7. DFT Calculations
3. Results
3.1. Effect of Imidazole-Based Collectors on the Flotation and Agglomeration Behavior of Quartz
3.1.1. Effect of Collectors on the Flotation Behavior of Quartz
3.1.2. Effect of Collectors on the Agglomeration Behavior of Quartz
3.2. Mechanisms Underlying the Influence of Collectors on Quartz Flotation and Agglomeration Behavior
3.2.1. Zeta Potential Analysis
3.2.2. FTIR Spectroscopy Analysis
3.2.3. Fluorescence Measurements
3.2.4. Calculation of Hydrophobic Association Energy
3.3. DFT Calculation Results
4. Discussion
5. Conclusions
- (1)
- The extension of the alkyl chain fundamentally enhances the intrinsic hydrophobic association capability of the collectors. This structural modification exponentially strengthens the inter-molecular van der Waals interactions, resulting in more robust interfacial self-assembly and significantly larger hydrophobic agglomerates of quartz particles, thereby drastically reducing the required collector dosage for optimal flotation.
- (2)
- The interaction between the imidazole-based collectors and the quartz surface is governed by a synergistic mechanism of electrostatic attraction and hydrogen bonding. The delocalized positive charge on the bulky imidazole ring serves as a highly active electron-acceptor center, facilitating strong physisorption onto the electronegative silanol sites.
- (3)
- While extending the alkyl chain length enhances the collecting power, excessive elongation triggers extreme hydrophobic agglomeration. These oversized flocs not only cause a depletion of free collector molecules in the aqueous phase, but also disrupt the equilibrium between the particles and the bubble surface tension, thereby destabilizing the liquid film of the mineralized bubbles and ultimately leading to the deteriorated performance of long-chain collectors.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Ban, X.Q.; Yao, J.; Yin, W.Z.; Xie, Y.; Du, W.F.; Zhang, T.Z.; Wang, Y.L. High-efficiency reverse flotation separation of magnesite from quartz using a novel collector, N-3-(Isodecyloxy)propyl propane-1,3-diamine: Mechanistic Insights into surface selective adsorption. Appl. Surf. Sci. 2025, 704, 163478. [Google Scholar] [CrossRef]
- Li, W.C.; Ma, Z.J.; Zhao, L.; Cheng, L.; Zheng, Y.S.; Xing, H.L. Mechanism of Quartz Flotation Enhanced by Calcium Ion. JOM 2025, 77, 2656–2665. [Google Scholar] [CrossRef]
- Rong, K.; Luo, D.W.; Deng, J.B.; Sun, S.N.; Song, S.S.; Jiang, B.W.; Yu, Z.X.; Zhao, K. An environmentally friendly strategy for the preparation of high-purity quartz using combined collector reverse flotation coupled with acid-leaching technology. Miner. Eng. 2025, 227, 109274. [Google Scholar] [CrossRef]
- Yang, Y.; Wang, X.; Li, B.; Wei, Y.G.; Wang, H. Novel dodecylphosphonic acid collectors for the selective flotation of cassiterite from quartz: Flotation performance and DFT study. Appl. Surf. Sci. 2026, 719, 165091. [Google Scholar] [CrossRef]
- Yin, X.M.; Yao, J.; Yang, B.; Yin, W.Z.; Song, N.B.; Xie, Y.; Liu, J.Y. Inhibition effect and mechanism of actinolite dissolution characteristics on quartz flotation. Miner. Eng. 2025, 232, 109491. [Google Scholar] [CrossRef]
- Zhang, H.L.; Sun, W.; Chen, D.X.; Lin, S.Y.; Zhang, C.Y. Effects of Interfacial Hydroxylation Microstructure on Quartz Flotation by Sodium Oleate. Langmuir 2023, 39, 2182–2191. [Google Scholar] [CrossRef] [PubMed]
- O’Connor, C.; Hu, Y.H.; Han, L. Review of the recent history and current status of flotation practice in China. Miner. Eng. 2026, 235, 109829. [Google Scholar] [CrossRef]
- Zhang, S.Y.; Ye, Z.H.; Cheng, Q.; Wan, W.H.; Liu, S.; Liu, G.Y. Understanding the mechanism of N-(2-aminoethyl) amide collector on improving flotation separation of lepidolite from albite and quartz. Appl. Surf. Sci. 2026, 717, 164806. [Google Scholar] [CrossRef]
- Zhang, W.D.; Ren, Q.L.; Tu, R.Y.; Liu, S.; Qiu, F.H.; Guo, Z.H.; Liu, P.; Xu, S.H.; Sun, W.; Tian, M.J. The application of a novel amine collector, 1-(dodecylamino)-2-propanol, in the reverse flotation separation of apatite and quartz. J. Mol. Liq. 2024, 399, 124377. [Google Scholar] [CrossRef]
- Kaur, G.; Kumar, H.; Singla, M. Diverse applications of ionic liquids: A comprehensive review. J. Mol. Liq. 2022, 351, 118556. [Google Scholar] [CrossRef]
- Sharma, P.; Sharma, S.; Kumar, H. Introduction to ionic liquids, applications and micellization behaviour in presence of different additives. J. Mol. Liq. 2024, 393, 123447. [Google Scholar] [CrossRef]
- Wang, Y.X.; Yang, S.Y.; Wang, Q.Q.; Chen, B.; Bao, S.X.; Li, W.B.; Liu, C. Synthesis and application of a quaternary ammonium ionic liquid collector for flotation separation of fluorite and bastnaesite. J. Rare Earths 2026, 44, 946–956. [Google Scholar] [CrossRef]
- Chen, S.Y.; Chen, Y.; Gu, G.H.; Yao, X.; Hu, H.X. Influence and Mechanism of 1-Dodecyl-3-methylimidazolium Bromide on the Flotation Behavior of Quartz and Feldspar in a Neutral System. Minerals 2025, 15, 1235. [Google Scholar] [CrossRef]
- Guo, Y.; Liu, W.; Liu, W.; Bao, L. Influence of hydrophobic carbon chain length on flotation performance of amine surfactants. J. Cent. South Univ. (Sci. Technol.) 2024, 55, 4175−4183. [Google Scholar]
- Wen, L.; Lu, X.L.; Zhang, D.K.; Wang, Y.S. Effect of Benzene Ring Alkyl Chain Length on the Flotation Recovery of Coking Coal. Acs Omega 2025, 10, 56110–56119. [Google Scholar] [CrossRef]
- Yang, X.S.; Feng, B.; Guo, W.; Liao, W.D.; Ke, Z. Effects and mechanisms of charged microbubbles and sodium hexametaphosphate in the flotation separation of lepidolite and albite. Colloids Surf. A-Physicochem. Eng. Asp. 2026, 728, 138610. [Google Scholar] [CrossRef]
- Yan, W.P.; Zhang, B.Y.; Yang, Y.H.; Deng, J.; Li, W.S. The Cavitation Characteristics of Micro-Nanobubbles and Their Effects on the Flotation Recovery of Fine-Grained Ilmenite. Minerals 2025, 15, 628. [Google Scholar] [CrossRef]
- Zhang, Z.Y.; Cui, Z.K.; Wei, Q.; Jiao, F. Mechanisms of surface dissolution-regulated selective hydrophobic agglomeration and bubble-mediated flotation for fine-grained lepidolite. Miner. Eng. 2026, 242, 110201. [Google Scholar] [CrossRef]
- Du, Y.S.; Meng, Q.Y.; Yuan, Z.T.; Han, C.; Li, L.X.; Lu, J.W.; Liu, T. Impact of acid surface pretreatment on the hydrophobic agglomeration of micro-fine ilmenite and titanaugite in flotation. Miner. Eng. 2024, 218, 109050. [Google Scholar] [CrossRef]
- Li, W.; Cui, Y.F.; Pan, Z.C.; Jiao, F.; Yang, C.R.; Wang, X.; Zhang, Z.Q.; Qin, W.Q. Hydrophobic agglomeration flotation of fine cassiterite induced by kerosene and sodium oleate. Powder Technol. 2024, 432, 119015. [Google Scholar] [CrossRef]
- Li, Y.C.; Xia, Y.C.; Zhang, D.K.; Li, A.; Liu, H.; Avid, B.; Xing, Y.W.; Gui, X.H. New insights into enhancing flotation performance of low-rank coal by adding surfactant Triton X-100: Interparticle hydrophobic agglomeration and its interaction. Powder Technol. 2026, 469, 121885. [Google Scholar] [CrossRef]
- Shen, Z.H.; Wang, J.L.; Zhang, H.; Liang, Q.X.; Mao, S.; Xie, H. New insights into synergistic mechanism of oleic acid-kerosene in enhancing hydrophobic agglomeration of fine rhodochrosite. Miner. Eng. 2026, 235, 109823. [Google Scholar]
- Ouyang, L.Y.; Wu, J.J.; Huang, Z.Q.; Burdonov, A.E.; Vchislo, N.V.; Wang, H.L.; He, G.C.; Yu, X.Y.; Ma, J.P.; Li, W.Y. A novel 3-tetradecylamine propyl amidoxime collector for highly efficient flotation of fine kaolinite. Powder Technol. 2024, 445, 120125. [Google Scholar] [CrossRef]
- Gong, W.Q.; He, J.F.; Yang, B.; Xu, H.L.; Shan, Y.H.; Fu, L.X.; Wu, J.W. Interfacial synergistic mechanism of an effective combined collector sodium oleate/cetyltrimethyl ammonium chloride and its enhanced flotation separation of K-feldspar and quartz. Surf. Interfaces 2025, 60, 106017. [Google Scholar] [CrossRef]
- Ma, J.P.; Wu, J.J.; Chen, Y.; Zhong, H.; Chen, X.P.; Huang, Z.Q.; Burdonov, A.E.; Vchislo, N.V.; Bavuu, C.; Ouyang, L.Y. Adsorption Mechanism of 3-Tetradecylamine Propyl Amidoxime in the Reverse Flotation Separation of Quartz from Magnetite. Langmuir 2025, 41, 21021–21031. [Google Scholar] [CrossRef] [PubMed]
- Xu, L.; Jiao, F.; Jia, W.H.; Pan, Z.C.; Hu, C.Q.; Qin, W.Q. Selective flotation separation of spodumene from feldspar using mixed anionic/nonionic collector. Colloids Surf. A-Physicochem. Eng. Asp. 2020, 594, 124605. [Google Scholar] [CrossRef]
- Cao, Z.; Cheng, Z.Y.; Wang, J.L.; Cao, Y.D. Synergistic depression mechanism of Ca2+ ions and sodium silicate on bastnaesite flotation. J. Rare Earths 2022, 40, 988–995. [Google Scholar] [CrossRef]
- Wang, D.; Hu, Y. Solution Chemistry of Flotation; Hunan Science and Technology Press: Changsha, China, 1988. (In Chinese) [Google Scholar]
- Liu, A.; Fan, M.Q.; Li, Z.H.; Fan, J.C. Non-polar oil assisted DDA flotation of quartz I: Interfacial interaction between dodecane oil drop and mineral particle. Int. J. Miner. Process. 2017, 168, 1–8. [Google Scholar] [CrossRef]
- Cheng, C.; Zeng, G.S.; Huang, Z.Q. Benzohydroxamic acid derivatives: Structure-activity relationships in the malachite flotation. Sep. Purif. Technol. 2025, 360, 130923. [Google Scholar] [CrossRef]
- Ma, J.P.; Wu, J.J.; Chen, Y.; Zhong, H.; Chen, X.P.; Huang, Z.Q.; Burdonov, A.E.; Vchislo, N.V.; Bavuu, C.; Ouyang, L.Y. Study on the mechanism of froth flotation separation and enrichment of magnesite ore using a novel anionic Gemini surfactant. Powder Technol. 2025, 461, 121112. [Google Scholar] [CrossRef]
- Jin, S.Z.; Shi, Q.; Ou, L.M. Hydrophobic Flocculation of Fine Cassiterite Using Alkyl Hydroxamic Acids with Different Carbon Chain Lengths as Collectors. Molecules 2023, 28, 3911. [Google Scholar] [CrossRef]
- Lu, Y.X.; Huang, L.; Jia, W.H.; Zhong, H.; Chen, W. pH-driven selective flotation of scheelite using a tailored hydroxamate collector: Mechanistic insights from surface coordination and dissolution. Miner. Eng. 2025, 234, 109754. [Google Scholar] [CrossRef]
- Lei, D.S.; Zhu, Y.G.; Zhang, X.L.; Gao, X.Y.; Li, D.L.; Liu, W.B.; Peng, X.Y. Enhancing apatite flotation efficiency via foam fluidity optimization: Interfacial assembly Controlled by mixed anionic/cationic collectors. Appl. Surf. Sci. 2026, 725, 165856. [Google Scholar] [CrossRef]
- Yuan, T.Y.; Guo, Y.; Su, C.; Wang, Z.Y.; Zuo, A.Y.; Xu, L.H.; Tian, J.; Wang, Z.J.; Shu, K.Q.; Wang, D.H.; et al. A new perspective on flotation performance of different particle sizes spodumene in NaOL/DDA: Foam properties and underlying mechanisms. Miner. Eng. 2026, 237, 109978. [Google Scholar] [CrossRef]
- Long, Q.R.; He, Q.; Cui, W.Y.; Zhu, Y.G. Hydrophobic agglomeration of different types of collectors in the separation of fine tenorite from quartz. Miner. Eng. 2025, 232, 109539. [Google Scholar] [CrossRef]
- Shen, Z.H.; Zhang, Q. Mechanistic insight of hydrophobic agglomeration of rhodochrosite fines Co-enhanced by Oleic-Kerosene emulsion and static magnetic field. Sep. Purif. Technol. 2023, 310, 123017. [Google Scholar] [CrossRef]
- Li, S.W.; Chen, L.Y.; Sun, Z.Q.; Liu, X. Effect of the hydrodynamic wedge on the intervening liquid film between a bubble and a particle and the implication on froth flotation. Miner. Eng. 2026, 237, 109982. [Google Scholar] [CrossRef]
- Zhao, L.A.; Zhang, Q. A significant review of froth stability in mineral flotation. Chem. Eng. Sci. 2025, 302, 120738. [Google Scholar] [CrossRef]












| Sample | SiO2 | Al2O3 | Na2O | K2O | Fe2O3 |
|---|---|---|---|---|---|
| Quartz | 98.52 | 0.46 | 0.29 | 0.07 | 0.07 |
| OMB | DMB | HMB | |
|---|---|---|---|
| Cm (mg/L) | 5.02 | 2.00 | 1.41 |
| ΔG (Kcal/mol) | −3.648 | −5.472 | −7.296 |
| HOMO | LUMO | ΔE | |
|---|---|---|---|
| OMB | −0.37995 | −0.18137 | 0.19858 |
| DMB | −0.34644 | −0.18127 | 0.16517 |
| HMB | −0.32777 | −0.18107 | 0.1467 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Chen, S.; Yang, Y.; Wu, Y.; Yu, S.; Lv, B.; Ouyang, C.; Yao, X.; Chen, Y.; Gu, G. Mechanism of Imidazole Collectors in the Hydrophobic Agglomeration and Flotation Behavior of Quartz. Colloids Interfaces 2026, 10, 44. https://doi.org/10.3390/colloids10030044
Chen S, Yang Y, Wu Y, Yu S, Lv B, Ouyang C, Yao X, Chen Y, Gu G. Mechanism of Imidazole Collectors in the Hydrophobic Agglomeration and Flotation Behavior of Quartz. Colloids and Interfaces. 2026; 10(3):44. https://doi.org/10.3390/colloids10030044
Chicago/Turabian StyleChen, Siyu, Yuankun Yang, Yanming Wu, Shengli Yu, Bingchao Lv, Chongzhong Ouyang, Xiang Yao, Yuan Chen, and Guohua Gu. 2026. "Mechanism of Imidazole Collectors in the Hydrophobic Agglomeration and Flotation Behavior of Quartz" Colloids and Interfaces 10, no. 3: 44. https://doi.org/10.3390/colloids10030044
APA StyleChen, S., Yang, Y., Wu, Y., Yu, S., Lv, B., Ouyang, C., Yao, X., Chen, Y., & Gu, G. (2026). Mechanism of Imidazole Collectors in the Hydrophobic Agglomeration and Flotation Behavior of Quartz. Colloids and Interfaces, 10(3), 44. https://doi.org/10.3390/colloids10030044

