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  4. When Polymorphism in Metal-Organic Frameworks Enables Water Sorption Profile Tunability for Enhancing Heat Allocation and Water Harvesting Performance
 
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2024
Journal Article
Title

When Polymorphism in Metal-Organic Frameworks Enables Water Sorption Profile Tunability for Enhancing Heat Allocation and Water Harvesting Performance

Abstract
The development of thermally driven water-sorption-based technologies relies on high-performing water vapor adsorbents. Here, polymorphism in Al-metal-organic frameworks is disclosed as a new strategy to tune the hydrophilicity of MOFs. This involves the formation of MOFs built from chains of either trans- or cis- µ-OH-connected corner-sharing AlO4(OH)2 octahedra. Specifically, [Al(OH)(muc)] or MIP-211, is made of trans, trans-muconate linkers, and cis-µ-OH-connected corner-sharing AlO4(OH)2 octahedra giving a 3D network with sinusoidal channels. The polymorph MIL-53-muc has a tiny change in the chain structure that results in a shift of the step position of the water isotherm from P/P0 ≈ 0.5 in MIL-53-muc, to P/P0 ≈ 0.3 in MIP-211. Solid-state NMR and Grand Canonical Monte Carlo reveal that the adsorption occurs initially between two hydroxyl groups of the chains, favored by the cis-positioning in MIP-211, resulting in a more hydrophilic behavior. Finally, theoretical evaluations show that MIP-211 would allow achieving a coefficient of performance for cooling (COPc) of 0.63 with an ultralow driving temperature of 60 °C, outperforming benchmark sorbents for small temperature lifts. Combined with its high stability, easy regeneration, huge water uptake capacity, green synthesis, MIP-211 is among the best adsorbents for adsorption-driven air conditioning and water harvesting from the air.
Author(s)
Matemb Ma Ntep, Tobie J.
University of Düsseldorf
Wahiduzzaman, Mohammad
University of Montpellier
Laurenz, Eric  
Fraunhofer-Institut für Solare Energiesysteme ISE  
Cornu, Ieuan
CEMHTI - Conditions Extrêmes et Matériau:Haute Température et Irradiation Orléans
Mouchaham, Georges
Institut des Materiaux Poreux de Paris
Dovgaliuk, Iurii
Institut des Materiaux Poreux de Paris
Nandi, Shyamapada
Institut des Materiaux Poreux de Paris
Knop, Klaus
Heinrich Heine University Düsseldorf
Jansen, Christian
Heinrich-Heine-Universität, Düsseldorf, Institut für Anorganische Chemie und Strukturchemie
Nouar, Farid
Institut des Materiaux Poreux de Paris
Florian, Pierre
CEMHTI - Conditions Extrêmes et Matériau:Haute Température et Irradiation Orléans
Füldner, Gerrit  
Fraunhofer-Institut für Solare Energiesysteme ISE  
Maurin, Guillaume
University of Montpellier
Janiak, Christoph
Heinrich-Heine-Universität, Düsseldorf, Institut fur Anorganische Chemie und Strukturchemie
Serre, Christian
Institut des Materiaux Poreux de Paris
Journal
Advanced Materials  
Open Access
File(s)
Download (5.33 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.1002/adma.202211302
10.24406/publica-1576
Language
English
Fraunhofer-Institut für Solare Energiesysteme ISE  
Keyword(s)
  • adsorption

  • adsorption chiller

  • Metal organic framework

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