Water Adsorption in MOFs

Structures and Applications

Review (2023)
Authors

Bo Zhang (Tianjin University)

Zerui Zhu (Nanjing Tech University)

Xuerui Wang (Nanjing Tech University)

X. Liu (Tianjin University, ChemE/Catalysis Engineering)

Freek Kapteijn (ChemE/Catalysis Engineering)

Affiliation
ChemE/Catalysis Engineering
Copyright
© 2023 Bo Zhang, Zerui Zhu, Xuerui Wang, X. Liu, F. Kapteijn
To reference this document use:
https://doi.org/10.1002/adfm.202304788
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Bo Zhang, Zerui Zhu, Xuerui Wang, X. Liu, F. Kapteijn
Affiliation
ChemE/Catalysis Engineering
Issue number
43
Volume number
34
DOI:
https://doi.org/10.1002/adfm.202304788
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Abstract

Metal–organic frameworks (MOFs) are superior sorbents for water adsorption-based applications. The unique step-like water isotherm at a MOF-specific relative pressure allows easy loading and regeneration over a small range of temperature and pressure conditions. With good hydrothermal stability and cyclic durability, it stands out over classical sorbents used in applications for humidity control, water harvesting, and adsorption-based heating and cooling. These are easily regenerated at moderate temperatures using “waste” heat or solar heating. The isotherm thermodynamics and adsorption mechanisms are described, and the presence of MOFs in the water–air system is explained. Based on six selection criteria ≈40 reported MOFs and one COF are identified for potential application. Trends and approaches in further synthesis optimization and production scale-up are highlighted. No-MOF-fits-all, each MOF has its own specific step location matching only with a certain application type. Most applications are technically feasible and demonstrated on the bench-scale or small pilot. Their maturity is benchmarked by their technology readiness level. Retrofitting existing applications with MOFs replacing classical desiccants may lead to rapid demonstration. Studies on techno-economic analysis and life cycle analysis are required for a rational evaluation of the feasibility of promising applications.