氢同位素
氢
分离(统计)
化学
同位素分离
同位素
多孔性
环境化学
有机化学
物理
计算机科学
核物理学
机器学习
作者
Ming Liu,Linda Zhang,Marc A. Little,Venkat Kapil,Michele Ceriotti,Siyuan Yang,Lifeng Ding,Daniel Holden,Rafael Balderas‐Xicohténcatl,Donglin He,Rob Clowes,Samantha Y. Chong,Gisela Schütz,Linjiang Chen,Michael Hirscher,Andrew I. Cooper
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2019-10-31
卷期号:366 (6465): 613-620
被引量:387
标识
DOI:10.1126/science.aax7427
摘要
The separation of hydrogen isotopes for applications such as nuclear fusion is a major challenge. Current technologies are energy intensive and inefficient. Nanoporous materials have the potential to separate hydrogen isotopes by kinetic quantum sieving, but high separation selectivity tends to correlate with low adsorption capacity, which can prohibit process scale-up. In this study, we use organic synthesis to modify the internal cavities of cage molecules to produce hybrid materials that are excellent quantum sieves. By combining small-pore and large-pore cages together in a single solid, we produce a material with optimal separation performance that combines an excellent deuterium/hydrogen selectivity (8.0) with a high deuterium uptake (4.7 millimoles per gram).
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