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Chuhui Zhang

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Review Open access Aug 2026

Microalgae-based bioremediation of heavy metals: Mechanisms, optimization, and environmental applications.

Heavy metal (HM) contamination in aquatic environments remains a persistent global challenge driven by industrialization, mining activities, and agricultural runoff. Microalgae-based remediation has emerged as a sustainable and cost-effective technology, utilizing both passive surface biosorption and active intracellular bioaccumulation mechanisms. This review comprehensively synthesizes recent advances in microalgae-mediated HM removal by integrating mechanistic insights at molecular, cellular, and process aspects. The performance of dried, living, and chemically modified biomass is comparatively evaluated across major HMs, including Cd, Pb, Cr, Cu, Hg, Ni, Zn, and As, under varying operational conditions. Microalgae are categorized into four major phyla to comparatively evaluate their HM adsorption capacities. Quantitatively analysis indicates that biosorption onto cell surfaces is the predominant mechanism while bioaccumulation, i.e., the uptake of HM into cells, is in general secondary but in some cases substantial. Transporter-regulated uptake and intracellular detoxification mechanisms are also discussed. Kinetic, isotherm, and thermodynamic modeling approaches are examined comprehensively, despite recurring inconsistencies in model selection, parameter interpretation, and reporting practices in the literature. Adsorption enhancement strategies, including physical and physiological conditioning, chemical modification, immobilization, biofilm cultivation, and multi-species co-cultivation, are assessed for their roles in improving HM removal efficiency, regeneration stability, and system robustness. By bridging mechanistic understanding with engineering implementation, this review provides a comprehensive framework to advance microalgae-based HM remediation.

Siwei Gu, Weihao Meng, Chuhui Zhang et al. · 0 citations
Review Open access Aug 2026

Removal of Per- and Polyfluoroalkyl Substances in Water by Metal−Organic Framework Adsorption: A Review

Per- and polyfluoroalkyl substances (PFASs) are persistent contaminants that are widely detected in aquatic environments and are difficult to remove because of their stable carbon–fluorine bonds and amphiphilic structures. Metal–organic frameworks (MOFs), with high surface areas, tailorable porous frameworks, diverse metal nodes, and adjustable surface functionalities, provide promising platforms for PFAS adsorption. This review summarizes recent advances in the adsorptive removal of PFASs from water using MIL-, UiO-, ZIF-, and PCN-type MOFs and their derivatives. The effects of hydrophobic interface construction, amine functionalization, fluorination, defect engineering, thermal conversion, and pore regulation on adsorption performance were discussed. PFAS adsorption by MOFs is governed by multiple interactions, including electrostatic attraction, Lewis acid–base interactions, hydrophobic interactions, van der Waals forces, and hydrogen bonding. The impact of solution pH, coexisting ions, natural organic matter, PFAS molecular structures, and MOF structures was also reviewed. In addition, regeneration strategies and PFAS adsorption performance after regeneration were summarized. Despite the advances, challenges persist regarding MOF stability, regeneration, cost-effectiveness, and adsorption performance in real water matrices. Future research should therefore focus on sustainable material design and scalable development of MOF-based treatment systems for effective PFAS remediation.

Zi-Fan Wang, Chuhui Zhang, Guangshuo Lyu et al. · 0 citations

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