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April 17, 2026Catalysts0 citationsOpen Access

Reimagining Textile Effluent Treatment Using Metal–Organic Framework-Based Hybrid Catalysts: A Critical Review

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HNHossam A. NabweyMTMaha A. Tony

Key Points

  • The central aim is to evaluate the effectiveness of metal-organic framework-based hybrid catalysts in treating textile wastewater.
  • Review of advanced oxidation processes and their limitations in textile wastewater treatment.
  • Discussion of the integration of adsorption and oxidation in MOF architectures.
  • Comparison of hybridization techniques to improve catalyst performance.
  • Examination of mechanistic pathways for dye degradation.
  • Identification of future research directions for scalable solutions.
  • Hybrid catalysts show improved charge transport and catalyst stability.
  • Rapid decolorization is distinct from complete organic removal.
  • There are challenges in metal leaching control and intermediate toxicity assessment.
  • Actionable research areas include water-stable MOFs and solar-driven operations.
  • The review highlights a need for life-cycle-informed design in catalyst development.

Abstract

Textile wastewater remains one of the most challenging industrial effluents to remediate due to its intense and persistent coloration, high organic load, elevated salinity, and fluctuating pH and the presence of recalcitrant dye structures and auxiliary chemicals. Conventional physicochemical and biological treatments frequently achieve incomplete removal, generate secondary wastes, or fail under high-salt and toxic dye matrices. Advanced oxidation processes (AOPs) provide molecular-level degradation via reactive oxygen species (ROS), yet their deployment is often constrained by narrow operating windows, catalyst instability, chemical/energy demand, and scale-up limitations. In this context, metal–organic frameworks (MOFs) have emerged as tunable porous catalytic platforms that integrate adsorption and oxidation within a single architecture through controllable metal nodes, functional linkers, and engineered pore environments. This critical review reimagines textile effluent treatment through the lens of MOF-based hybrid catalysts, synthesizing progress across Fenton/photo-Fenton catalysis, photocatalytic MOFs, persulfate activation, and MOF-derived/composite systems. Mechanistic pathways are discussed by linking pollutant enrichment, cyclic redox reactions, charge-transfer processes, and ROS-driven degradation toward mineralization, with emphasis on the distinction between rapid decolorization and true organic removal. A critical comparison highlights how hybridization improves charge transport, stability, and catalyst recovery, while persistent gaps remain in hydrolytic robustness, metal leaching control, intermediate toxicity assessment, real-wastewater validation, continuous-flow reactor integration, and techno-economic feasibility. Finally, the review outlines actionable research directions, including water-stable and defect-engineered MOFs, immobilized and structured catalysts, solar-driven operation, standardized performance metrics, and life-cycle-informed design, to accelerate translation toward scalable and sustainable textile wastewater remediation. By bridging material chemistry with reactor-level feasibility and sustainability assessment, this review provides an implementation-oriented perspective for next-generation textile wastewater treatment.

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Cite This Study

Nabwey et al. (2026) studied this question.

synapsesocial.com/papers/69e1cf375cdc762e9d8581eahttps://doi.org/10.3390/catal16040355
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