Na<sup>+</sup>-gated water-conducting nanochannels for boosting CO<sub>2</sub> conversion to liquid fuels.

Li, Huazheng; Qiu, Chenglong; Ren, Shoujie; Dong, Qiaobei; Zhang, Shenxiang; Zhou, Fanglei; Liang, Xinhua; Wang, Jianguo et al. · Science · 2020

basic_science · Level V

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Abstract

Robust, gas-impeding water-conduction nanochannels that can sieve water from small gas molecules such as hydrogen (H<sub>2</sub>), particularly at high temperature and pressure, are desirable for boosting many important reactions severely restricted by water (the major by-product) both thermodynamically and kinetically. Identifying and constructing such nanochannels into large-area separation membranes without introducing extra defects is challenging. We found that sodium ion (Na<sup>+</sup>)-gated water-conduction nanochannels could be created by assembling NaA zeolite crystals into a continuous, defect-free separation membrane through a rationally designed method. Highly efficient in situ water removal through water-conduction nanochannels led to a substantial increase in carbon dioxide (CO<sub>2</sub>) conversion and methanol yield in CO<sub>2</sub> hydrogenation for methanol production.