微型多孔材料
水溶液
化学工程
分子
溶剂
化学
金属有机骨架
吸附
二氧化碳
材料科学
纳米技术
有机化学
工程类
作者
Daniel P. Erdosy,Malia B. Wenny,Joy Cho,Christopher DelRe,Miranda V. Walter,Felipe Jiménez‐Ángeles,Baofu Qiao,Ricardo Sanchez,Yifeng Peng,Brian D. Polizzotti,Mónica Olvera de la Cruz,Jarad A. Mason
出处
期刊:Nature
[Springer Nature]
日期:2022-08-24
卷期号:608 (7924): 712-718
被引量:84
标识
DOI:10.1038/s41586-022-05029-w
摘要
Liquids with permanent microporosity can absorb larger quantities of gas molecules than conventional solvents1, providing new opportunities for liquid-phase gas storage, transport and reactivity. Current approaches to designing porous liquids rely on sterically bulky solvent molecules or surface ligands and, thus, are not amenable to many important solvents, including water2-4. Here we report a generalizable thermodynamic strategy to preserve permanent microporosity and impart high gas solubilities to liquid water. Specifically, we show how the external and internal surface chemistry of microporous zeolite and metal-organic framework (MOF) nanocrystals can be tailored to promote the formation of stable dispersions in water while maintaining dry networks of micropores that are accessible to gas molecules. As a result of their permanent microporosity, these aqueous fluids can concentrate gases, including oxygen (O2) and carbon dioxide (CO2), to much higher densities than are found in typical aqueous environments. When these fluids are oxygenated, record-high capacities of O2 can be delivered to hypoxic red blood cells, highlighting one potential application of this new class of microporous liquids for physiological gas transport.
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