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February 8, 20265 citations

Sustainable water treatment solutions using MOFs: enhancing efficiency and reducing environmental impact.

ANAmal A. NassarAEAyman K. El‐SawafAAAnwaar O. Ali

Key Points

  • This review aims to clarify the role of metal-organic frameworks (MOFs) in sustainable water treatment and their viability for real-world applications.
  • Evaluation of MOFs for addressing water scarcity
  • Assessment of environmental and economic viability via life cycle assessment
  • Identification of barriers to industrial deployment including costs and regulations
  • MOFs demonstrate surface areas exceeding 1000 m² g⁻¹ for effective water treatment
  • Certain frameworks maintain stability for 100 days in saline environments
  • Hydrothermal stability benchmarks and total cost of ownership challenges are identified for commercialization

Abstract

Global water security faces dual challenges of increasing scarcity and persistent pollution. This review clarifies its focus by positioning metal-organic frameworks (MOFs) within the frameworks of environmental sustainability, the circular water economy, and life cycle assessment (LCA). While MOFs offer surface areas typically exceeding 1000 m2 g-1 and tunable porosity for adsorption and desalination, their transition to real-world application is limited by critical engineering hurdles. The scope of this work is explicitly defined by evaluating: (1) MOFs' role in addressing water scarcity; (2) their environmental and economic viability via LCA data; and (3) the identification of barriers to industrial deployment, including raw material costs, regulatory hurdles, and disposal risks. By synthesizing specific examples such as frameworks maintaining stability for 100 days in saline environments and systems targeting energy consumption below 1.0 kWh m-3 this review identifies the hydrothermal stability benchmarks and total cost of ownership (TCO) hurdles that must be overcome for large-scale commercialization. The focus remains on bridging the gap between laboratory-scale innovation and the practical requirements of sustainable water purification infrastructure.

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Cite This Study

Nassar et al. (2026) studied this question.

synapsesocial.com/papers/6988277b0fc35cd7a88463f0https://doi.org/10.1039/d5nr04933d
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