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Updated: Aug 14, 2026

Resource Recycling of Red Soil to Synthesize Fe2O3/FAU-type Zeolite Composite Material for Heavy Metal Removal
Published on: June 2, 2022
Upcycling kaolin bleaching wastewater into a biogenic Fe-based nanocomposite for selective rare earth elements
Kaiqiang Li1, Jiajiang Lin1, Zhibiao Chen2
1Fujian Key Laboratory of Pollution Control and Resource Reuse, College of Environmental and Resource Sciences, Fujian Normal University, Fuzhou 350117, Fujian Province, China.
Abstract:
Iron-based adsorbents are predominantly synthesized from chemical iron salts, leading to additional resource consumption and secondary environmental burdens. In contrast, the conversion of iron-containing industrial waste into functional recovery materials has received limited attention. This study addresses the dual challenges of hazardous kaolin bleaching wastewater disposal and REE resource loss by developing a novel "waste-derived material for waste treatment" strategy. Specifically, we employed kaolin bleaching wastewater as an unconventional iron source to construct a sustainable bio-inorganic composite, FeNMs@DIRB, enabling simultaneous resource recycling and pollution control. The key innovation lies in utilizing dissimilatory iron-reducing bacteria (DIRB) to biosynthesize FeNMs@DIRB in situ, where microbial components prove indispensable for performance. Results demonstrate that DIRB successfully reduced Fe (II) from wastewater to form FeNMs, with 3D-EEM analysis confirming that microbial dissolved organic matter participated in nanomaterial formation and surface immobilization. The composite exhibited inherent selectivity (Gd > Y > La) in simplified systems, and achieved >95% removal for heavy REEs (Tb, Ho, Er, Yb) in real mining wastewater containing 12 REEs, maintaining selectivity under complex conditions. Notably, FeNMs@DIRB maintained satisfactory adsorption-desorption performance over three consecutive cycles and showed lower iron leaching across pH 4.0 and 8.0, confirming its structural stability and reusability. These results establish FeNMs@DIRB as a robust, selective adsorbent derived entirely from waste streams, offering a sustainable paradigm for REE recovery from complex industrial effluents.
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