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January 18, 2026Environmental Science and Pollution Research8 citationsOpen Access

Coal fly ash industrial waste-derived products: a review on the extraction of aluminum and silicon for nanoparticle synthesis

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NTNtombiphumile Perceverence TenzaUniversity of South AfricaMAMathibela Elias AphaneUniversity of South Africa

Key Points

  • The review aims to evaluate different methods for extracting aluminum and silicon from coal fly ash.
  • Critically reviews extraction techniques for aluminum and silicon from coal fly ash.
  • Assesses efficiency, selectivity, and scalability of sintering, acid leaching, and alkaline leaching.
  • Explores hybrid methods like sequential acid-alkali leaching and hydrothermal treatments.
  • Sintering techniques enhance aluminum recovery but are inefficient for silicon extraction.
  • Direct acid leaching can achieve extraction efficiencies above 80% for aluminum.
  • Hybrid approaches enable balanced recovery with up to 98% efficiency, reducing energy and chemical use.

Abstract

Abstract C oal fly ash (CFA), a common industrial by-product, poses both environmental challenges and opportunities as a secondary source of silicon and aluminum. This review critically evaluates extraction methods for these elements, focusing on efficiency, selectivity, and scalability. Sintering techniques enhance aluminum recovery by decomposing stable aluminosilicate phases but generally fail to extract silicon, requiring high energy input and large chemical volumes and generating substantial secondary waste. Direct acid leaching selectively dissolves aluminum, often achieving extraction efficiencies above 80%, though crystalline phases such as mullite remain largely unreactive. Alkaline leaching and alkali fusion improve solubilization of both aluminum and silicon, particularly targeting refractory quartz and mullite, but frequently favor silicate recovery and involve significant reagent consumption. Hybrid and combined approaches, including sequential acid–alkali leaching and hydrothermal treatments, achieve more balanced recovery of Al and Si, with moderate to high efficiencies (up to 98%), and reduce energy and chemical demand. Despite progress, most recoveries are still moderate, impurities persist, and scalable, standardized protocols are lacking. While CFA-derived silica nanoparticles are increasingly studied, sustainable alumina nanoparticle synthesis and broader applications remained underexplored. Limited research in regions such as South Africa further restricts local adaptation. Thus, the review highlights the importance of integrated, eco-friendly, and region-specific strategies, reporting both elemental and oxide-based data to enable meaningful comparison and guide future CFA valorization.

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Cite This Study

Tenza et al. (2026) studied this question.

synapsesocial.com/papers/696c7817eb60fb80d139645ahttps://doi.org/10.1007/s11356-025-37298-z
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