4.7 Article

Hierarchical MOF-xerogel monolith composites from embedding MIL-100(Fe,Cr) and MIL-101(Cr) in resorcinol-formaldehyde xerogels for water adsorption applications

Journal

MICROPOROUS AND MESOPOROUS MATERIALS
Volume 215, Issue -, Pages 143-153

Publisher

ELSEVIER
DOI: 10.1016/j.micromeso.2015.05.017

Keywords

Metal-organic framework; Resorcinol-formaldehyde xerogels; Monoliths; Water adsorption; Heat transformation

Funding

  1. DAAD with PPP-project (hierarchical structured metal-based nanocomposites) [57053987]
  2. University of Dusseldorf through its strategic research fund (SFF)

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Shaping of otherwise powdery metal-organic frameworks is recognized as a more-and-more important issue to advance them to the application stage. Monolithic MOF composites were synthesized using micro-to-mesoporous MIL-100(Fe,Cr) and MIL-101(Cr) as thermally and chemically stable MOFs together with a mesoporous resorcinol-formaldehyde based xerogel as binding agent. The monolithic bodies could be loaded with up to 77 wt% of powdery MIL material under retention of the MIL surface area and porosities (from N-2 adsorption) by pre-polymerization of the xerogel solution. The obtained monoliths are mechanically stable and adsorb close to the expected water vapor amount according to the MIL weight percentage. There is no loss of BET surface area, porosity and water uptake capacity especially for the MIL-101(Cr) composites. Water vapor adsorption isotherms show that the 77 wa MIL-101(Cr) loaded composite even features a slightly increased water vapor uptake compared to pure MIL-101(Cr) up to a relative vapor pressure of P.P-0(-1) = 0.5. These hydrophilic monolithic composites could be applied for heat transformation application such as thermally driven adsorption chillers or adsorption heat pumps. (C) 2015 Elsevier Inc. All rights reserved.

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