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可弯曲沸石膜:合成与改进的气体分离性能

Bendable Zeolite Membranes: Synthesis and Improved Gas Separation Performance.

作者信息

Wang Bo, Ho W S Winston, Figueroa Jose D, Dutta Prabir K

机构信息

§National Energy Technology Laboratory, US Department of Energy, 626 Cochran Mill Road, Pittsburgh, Pennsylvania 15236, United States.

出版信息

Langmuir. 2015 Jun 23;31(24):6894-901. doi: 10.1021/acs.langmuir.5b01306. Epub 2015 Jun 9.

Abstract

Separation and sequestration of CO2 emitted from fossil energy fueled electric generating units and industrial facilities will help in reducing anthropogenic CO2, thereby mitigating its adverse climate change effects. Membrane-based gas separation has the potential to meet the technical challenges of CO2 separation if high selectivity and permeance with low costs for large-scale manufacture are realized. Inorganic zeolite membranes in principle can have selectivity and permeance considerably higher than polymers. This paper presents a strategy for zeolite growth within the pores of a polymer support, with crystallization time of an hour. With a thin coating of 200-300 nm polydimethylsiloxane (PDMS) on the zeolite-polymer composite, transport data for CO2/N2 separation indicate separation factors of 35-45, with CO2 permeance between 1600 and 2200 GPU (1 GPU = 3.35 × 10(-10) mol/(m(2) s Pa)) using dry synthetic mixtures of CO2 and N2 at 25 °C. The synthesis process results in membranes that are highly reproducible toward transport measurements and exhibit long-term stability (3 days). Most importantly, these membranes because of the zeolite growth within the polymer support, as contrasted to conventional zeolite growth on top of a support, are mechanically flexible.

摘要

分离和封存化石能源发电装置及工业设施排放的二氧化碳,将有助于减少人为二氧化碳排放,从而减轻其对气候变化的不利影响。如果能实现高选择性、高通量且大规模制造成本低廉,基于膜的气体分离技术就有潜力应对二氧化碳分离的技术挑战。原则上,无机沸石膜的选择性和通量可比聚合物膜高得多。本文提出了一种在聚合物载体孔内进行沸石生长的策略,结晶时间为一小时。在沸石 - 聚合物复合材料上涂覆一层200 - 300纳米厚的聚二甲基硅氧烷(PDMS)后,二氧化碳/氮气分离的传输数据表明,在25℃下使用二氧化碳和氮气的干燥合成混合物时,分离因子为35 - 45,二氧化碳通量在1600至2200 GPU之间(1 GPU = 3.35×10⁻¹⁰摩尔/(平方米·秒·帕斯卡))。该合成过程得到的膜在传输测量方面具有高度可重复性,并表现出长期稳定性(3天)。最重要的是,与传统在载体顶部生长沸石不同,这些膜由于在聚合物载体内生长沸石,因而具有机械柔韧性。

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