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Open AccessDOI: 10.1016/j.ijmst.2025.08.016Original Research

Reverse floc-flotation of talc from chalcopyrite by using polyvinyl acetate as a flocculant: Adsorption and bubble capture studies

XIE Yu¹,YIN Wanzhong¹,LIU Qi¹,WANG Daowei¹,SUN Wenju¹

University of Alberta

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Reverse floc-flotation of talc from chalcopyrite by using polyvinyl acetate as a flocculant: Adsorption and bubble capture studies
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Academic Research Journal
Published:January 15, 2025Edition:Vol. 32, Issue 8 • pp. 100-112Citation:XIE Yu et al. (2025), Academic Research Journal
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Key Takeaways & Executive Findings

  • • PVAc selectively flocculates ultrafine talc from chalcopyrite, enabling efficient reverse flotation separation at a dosage of 40 mg/L. • Hydrogen bonding between PVAc ester groups and talc surface hydroxyls drives selective flocculation, while chalcopyrite lacks binding sites. • PVAc adsorption enhances talc hydrophobicity and promotes bubble-particle attachment by shifting interaction energy from repulsive to attractive. • The study provides mechanistic insights into floc-flotation coupling, expanding the use of ester-based polymers for ultrafine mineral recovery.
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Abstract

Chalcopyrite is often intergrown with talc, which, after grinding, forms ultrafine particles (<10 lm) that readily coat chalcopyrite surfaces, hindering flotation and causing significant losses in tailings. This study evaluates polyvinyl acetate (PVAc), a thermoplastic polymer, as a selective flocculant to enhance reverse flotation separation of chalcopyrite from ultrafine talc. Flotation tests showed that at a PVAc dosage of 40 mg/L, talc can be effectively and selectively removed, enabling efficient separation. Laser particle size analysis and scanning electron microscopy-energy dispersive spectrometry (SEM-EDS) confirmed that PVAc promotes selective talc aggregation without affecting chalcopyrite. X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations revealed that hydrogen bonding between PVAc ester groups and surface hydroxyls on talc drives the flocculation, while chalcopyrite lacks suitable binding sites. PVAc adsorption also enhances talc hydrophobicity. Furthermore, particle-bubble coverage angle measurements and extended Derjaguin-Landau-Verwey-Overbeek (DLVO) theory theoretical calculations demonstrated that PVAc-induced flocculation increases attractive interactions between talc and bubbles, shifting the total interaction energy from repulsive to attractive and promoting bubble-particle attachment. This study clarifies the selective adsorption and flocculation mechanisms of PVAc and reveals the coupling of flocculation and flotation of ultrafine talc from a particle-bubble capture perspective, while expanding the potential of ester-based polymers for ultrafine mineral recovery.

1. Introduction

Ultrafine mineral particles, typically defined as those with particle sizes smaller than about 10 lm, are difficult to effectively recover and utilize during mineral processing and separation due to their small sizes. These particles cannot be efficiently recovered by froth flotation and are often discarded to tailings [1]. Tailings are the leftover waste materials after ore beneficiation and commonly contain pollutants such as heavy metals, acid-generating sulfide gangue, and chemical reagents. Long-term accumulation of wet fluid tailings poses severe environmental threats, including water pollution, air pollution, soil contamination, ecological damage, and potential geological hazards. The abandonment and storage of ultrafine minerals constitute latent pollution sources, posing a threat to human life.

In terms of the separation of ultrafine minerals, traditional methods such as gravity separation, magnetic separation, and conventional froth flotation are generally not effective. In contrast, floc-flotation has emerged as one of the most efficient approaches for recovering ultrafine minerals. This technique relies on the adsorption of polymeric flocculants to the mineral surface, where the polymers' bridging action promotes the aggregation of ultrafine particles into larger flocs, thus enhancing flotation performance [2]. Floc-flotation not only enhances the separation of ultrafine minerals, but also mitigates their environmental impact and contributes to resource recovery. By optimizing the choice of flocculants and flotation conditions, it is possible to improve mineral separation efficiency, reduce environmental contamination, and achieve more sustainable mineral resource recovery and tailings management. However, this technology still faces challenges, particularly in the selective flocculation of target minerals from complex ores.

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Cite This Research Paper
XIE Yu, YIN Wanzhong, LIU Qi, WANG Daowei, SUN Wenju (2025). Reverse floc-flotation of talc from chalcopyrite by using polyvinyl acetate as a flocculant: Adsorption and bubble capture studies. SinoTechIntel Verified Research. https://doi.org/10.1016/j.ijmst.2025.08.016
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Frequently Asked Questions

What is the main challenge in separating chalcopyrite from talc?

Chalcopyrite is often intergrown with talc, which after grinding forms ultrafine particles (<10 µm) that coat chalcopyrite surfaces, hindering flotation and causing significant losses in tailings.

How does polyvinyl acetate (PVAc) function as a flocculant in this study?

PVAc selectively flocculates ultrafine talc particles through hydrogen bonding between its ester groups and surface hydroxyls on talc, while chalcopyrite lacks suitable binding sites, enabling selective separation.

What is the optimal PVAc dosage for effective separation?

Flotation tests showed that at a PVAc dosage of 40 mg/L, talc can be effectively and selectively removed from chalcopyrite, enabling efficient separation.

How does PVAc enhance bubble-particle attachment?

PVAc-induced flocculation increases attractive interactions between talc and bubbles, shifting the total interaction energy from repulsive to attractive, as demonstrated by particle-bubble coverage angle measurements and extended DLVO theory calculations.

What are the broader implications of this research?

This study clarifies the selective adsorption and flocculation mechanisms of PVAc and reveals the coupling of flocculation and flotation of ultrafine talc from a particle-bubble capture perspective, expanding the potential of ester-based polymers for ultrafine mineral recovery.

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