Szczegóły publikacji

Opis bibliograficzny

Hierarchically MOF-based porous monolith composites for atmospheric water harvesting / Mahyar Panahi-Sarmad, Tianyu Guo, Seyyed Alireza Hashemi, Ahmadreza Ghaffarkhah, Stefan WUTTKE, Mohammad Arjmand, Orlando J. Rojas, Feng Jiang // Advanced Materials [Dokument elektroniczny]. — Czasopismo elektroniczne ; ISSN  1521-4095 . — 2026 — vol. 38 iss. 1 art. no. 2413353, s. 1–38. — Wymagania systemowe: Adobe Reader. — Bibliogr. s. 32–36, Abstr. — Publikacja dostępna online od: 2025-07-02. — S. Wuttke - dod. afiliacja: Basque Centre for Materials, Applications & Nanostructures (BCMaterials), Spain

Autorzy (8)

  • Panahi-Sarmad Mahyar
  • Guo Tianyu
  • Hashemi Seyyed Alireza
  • Ghaffarkhah Ahmadreza
  • AGHWuttke Stefan
  • Arjmand Mohammad
  • Rojas Orlando J.
  • Jiang Feng

Słowa kluczowe

MOFsmonolith scaffoldshierarchical porous structuresAWHatmospheric water harvestingmetal organic frameworks

Dane bibliometryczne

ID BaDAP165841
Data dodania do BaDAP2026-03-06
Tekst źródłowyURL
DOI10.1002/adma.202413353
Rok publikacji2026
Typ publikacjiprzegląd
Otwarty dostęptak
Creative Commons
Czasopismo/seriaAdvanced Materials

Abstract

Water scarcity, a critical global challenge, has intensified due to the adverse effects of climate change on ecosystems and its detrimental impact on human activities. Addressing this issue requires solutions capable of providing clean water in regions facing hydroclimatic challenges and limited infrastructure. Atmospheric water harvesting (AWH) offers a promising solution, particularly in arid regions, by extracting moisture from the air. This review explores AWH technologies that leverage material porosity and hygroscopicity, focusing on highly porous materials such as Metal-Organic Frameworks (MOFs) and monolithic scaffolds. While MOFs exhibit exceptional water uptake due to their tunable chemistry and nanoscale porosity, their powdery nature poses stability and processability challenges. To overcome these limitations, integrating MOFs into multiscale porous monoliths—such as foams, aerogels, cryogels, and xerogels—enhances structural integrity and performance. The role of hierarchical porosity, engineered across nano-scale in MOF (<2 nm) and micro-scales (>2 nm) is emphasized in porous monoliths, in optimizing water capture efficiency. This review also highlights recent advancements in MOF-based composite monoliths, their working mechanisms, and the potential for large-scale implementation. By integrating nanotechnology with material chemistry, this work outlines strategies to enhance sorption capacity, desorption kinetics, and scalability, ultimately providing a roadmap for developing efficient, sustainable, and scalable AWH systems.

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