A Superhydrophobic Nanotrap Porous Organic Cage for Efficient Capture of SF <sub>6</sub> Under Dry and Humid Conditions

M Mingxuan Liu (State Key Laboratory of Solidification Processing and School of Materials Science and Engineering) A Ajie Guo (College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China) F Feiyan Wang X Xiaojuan Gu (College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China) X Xiaoyu Wang Y Yixian Du (College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China) X Xiongli Liu (School of Materials Science and Engineering, National Institute for Advanced Materials, TKL of Metal and Molecule-Based Material Chemistry) L Lin Li A Alideertu Dong (College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China)

Abstract

ABSTRACT Effective SF 6 capture and recovery are essential for reducing greenhouse gas emissions and promoting resource recycling, yet many porous materials exhibit reduced separation performance for SF 6 /N 2 mixtures in humid environments due to water adsorption competition or structural instability. To address this challenge, we propose a “superhydrophobic nanotrap” strategy by designing a nitrogen‐rich superhydrophobic porous organic cage (POC) named IMUPOC‐DA. This material incorporates a moisture‐blocking shield of superhydrophobic isobutyl chains and an inner cavity with a π‐system and Lewis base sites that synergistically enhance SF 6 trapping. At 298 K and 1 bar, IMUPOC‐DA achieves an SF 6 adsorption capacity of 53.6 cm 3 g −1 and an SF 6 /N 2 uptake ratio of 20.02, a record‐high reported thus far for POC‐based adsorbents. More importantly, the superhydrophobic surface endows the material with an extremely low water uptake (72.1 mg g −1 ), a high water contact angle (150.11 ° ), and excellent water stability. Dynamic column breakthrough experiments under 80% relative humidity show nearly unchanged SF 6 breakthrough time compared with dry conditions, demonstrating outstanding SF 6 /N 2 separation performance even in a moist environment. Therefore, this work not only provides a high‐performance candidate for industrial SF 6 recovery but also presents a general design strategy for developing moisture‐resistant adsorbents for gas separation.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 23, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

M

Mingxuan Liu

State Key Laboratory of Solidification Processing and School of Materials Science and Engineering

A

Ajie Guo

College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China

F

Feiyan Wang

X

Xiaojuan Gu

College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China

X

Xiaoyu Wang

Y

Yixian Du

College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China

X

Xiongli Liu

School of Materials Science and Engineering, National Institute for Advanced Materials, TKL of Metal and Molecule-Based Material Chemistry

L

Lin Li

A

Alideertu Dong

College of Chemistry and Chemical Engineering Engineering Research Center of Dairy Quality and Safety Control Technology Ministry of Education Inner Mongolia University Hohhot P. R. China