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气凝胶多孔复合液体实现高效二氧化碳捕获及二氧化碳/氮气分离。

Liquid-in-Aerogel Porous Composite Allows Efficient CO Capture and CO /N Separation.

作者信息

Jiang Haotian, Hou Yinglai, Liu Zengwei, Yuan Ruizhe, Du Yu, Ji Xiaofei, Sheng Zhizhi, Zhang Xuetong

机构信息

School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei, 230026, China.

Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, China.

出版信息

Small. 2023 Oct;19(41):e2302627. doi: 10.1002/smll.202302627. Epub 2023 Jun 7.

Abstract

The pursuit of efficient CO capture materials remains an unmet challenge. Especially, meeting both high sorption capacity and fast uptake kinetics is an ongoing effort in the development of CO sorbents. Here, a strategy to exploit liquid-in-aerogel porous composites (LIAPCs) that allow for highly effective CO capture and selective CO /N separation, is reported. Interestingly, the functional liquid tetraethylenepentamine (TEPA) is partially filled into the air pockets of SiO aerogel with left permanent porosity. Notably, the confined liquid thickness is 10.9-19.5 nm, which can be vividly probed by the atomic force microscope and rationalized by tailoring the liquid composition and amount. LIAPCs achieve high affinity between the functional liquid and solid porous counterpart, good structure integrity, and robust thermal stability. LIAPCs exhibit superb CO uptake capacity (5.44 mmol g , 75 °C, and 15 vol% CO ), fast sorption kinetics, and high amine efficiency. Furthermore, LIAPCs ensure long-term adsorption-desorption cycle stability and offer exceptional CO /N selectivity both in dry and humid conditions, with a separation factor up to 1182.68 at a humidity of 1%. This approach offers the prospect of efficient CO capture and gas separation, shedding light on new possibilities to make the next-generation sorption materials for CO utilization.

摘要

追求高效的CO捕获材料仍然是一个未解决的挑战。特别是,在开发CO吸附剂的过程中,同时满足高吸附容量和快速吸附动力学仍然是一项持续的工作。在此,报道了一种利用气凝胶内液体多孔复合材料(LIAPCs)实现高效CO捕获和选择性CO/N分离的策略。有趣的是,功能性液体四乙烯五胺(TEPA)部分填充到具有剩余永久孔隙率的SiO气凝胶的气穴中。值得注意的是,受限液体厚度为10.9 - 19.5纳米,这可以通过原子力显微镜清晰地探测到,并通过调整液体组成和用量进行合理分析。LIAPCs在功能性液体与固体多孔对应物之间实现了高亲和力、良好的结构完整性和强大的热稳定性。LIAPCs表现出卓越的CO吸附容量(在75°C和15体积% CO条件下为5.44 mmol/g)、快速的吸附动力学和高胺效率。此外,LIAPCs确保了长期的吸附 - 解吸循环稳定性,并且在干燥和潮湿条件下均具有出色的CO/N选择性,在湿度为1%时分离因子高达1182.68。这种方法为高效CO捕获和气体分离提供了前景,为制造下一代用于CO利用的吸附材料带来了新的可能性。

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