Charge‐Assisted Hydrogen‐Bonded Organic Frameworks with Inorganic Ammonium Regulated Switchable Open Polar Sites

Surface open polar sites within the voids of porous molecular crystals define the localized physicochemical environment for critical functions such as gas separation and molecular recognition. This study presents a new charge‐assisted hydrogen bonding (H‐bonding) motif, by exploiting inorganic ammon...

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Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2023-05, Vol.19 (20), p.e2207771-n/a
Hauptverfasser: Ding, Xiaojun, Luo, Yilin, Wang, Wei, Hu, Tongyang, Chen, Jing, Ye, Gang
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Sprache:eng
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Zusammenfassung:Surface open polar sites within the voids of porous molecular crystals define the localized physicochemical environment for critical functions such as gas separation and molecular recognition. This study presents a new charge‐assisted hydrogen bonding (H‐bonding) motif, by exploiting inorganic ammonium (NH4+) cations as H‐bond donors, to regulate the assembly of C2‐symmetric carboxylic tectons for building robust H‐bonded frameworks with permanent ultra‐micropores and open oxygen sites. Diverse building blocks are bridged by tetrahedral NH4+ to expand distinctive H‐bonded networks with varied pore architectures. Particularly, the open polar oxygen sites can be switched by altering NH4+ sources to tune the deprotonation of carboxyl‐containing tectons. The activated porous PTBA·NH4·DMF preserves the pore architecture and open polar oxygen sites, exhibiting remarkably selective sorption of CO2 (107.8 cm3 g−1,195 K) over N2 (11.2 cm3 g−1, 77 K) and H2 (1.4 cm3 g−1, 77 K). Charge‐assisted hydrogen‐bonded organic frameworks (HOFs) with reinforced microporous architectures and switchable open polar oxygen sites are constructed via inorganic ammonium regulated hydrogen bonding assembly for selective CO2 sorption.
ISSN:1613-6810
1613-6829
DOI:10.1002/smll.202207771