| Literature DB >> 35156299 |
Jinmei Lei1, Yaqi Hou1,2, Huimeng Wang1, Yi Fan1,3, Yunmao Zhang1, Baiyi Chen1,4, Shijie Yu1, Xu Hou1,2,3,4.
Abstract
Carbon dioxide (CO2 ) capture and storage technologies are promising to limit CO2 emission from anthropogenic activities, to achieve carbon neutrality goals. CO2 capture requires one to separate CO2 from other gases, and therefore a gas flow system that exhibits discernible gating behaviors for CO2 would be very useful. Here we propose a self-adaptive CO2 gas valve composed of chemically responsive liquid gating systems. The transmembrane critical pressures of the liquid gate vary upon the presence of CO2 , due to the superamphiphiles assembled by poly(propylene glycol) bis(2-aminopropyl ether) and oleic acid in gating liquids that are protonated specifically by CO2 . It is shown that the valve can perform self-adaptive regulation for specific gases and different concentrations of CO2 . This protonation-induced liquid gating mechanism opens a potential platform for applications of CO2 separators, detectors, sensors and beyond.Entities:
Keywords: Carbon Dioxide; Chemically Response; Gas Valves; Liquid Gating; Self-Adaptive System
Year: 2022 PMID: 35156299 DOI: 10.1002/anie.202201109
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336