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超高金属有机骨架负载和柔性纳米纤维膜,用于高效 CO 捕集,具有长期、超稳定的可回收性。

Ultrahigh Metal-Organic Framework Loading and Flexible Nanofibrous Membranes for Efficient CO Capture with Long-Term, Ultrastable Recyclability.

机构信息

Key Laboratory of Textile Science & Technology, Ministry of Education, College of Textiles , Donghua University , Shanghai 201620 , China.

Innovation Center for Textile Science and Technology , Donghua University , Shanghai 200051 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Oct 10;10(40):34802-34810. doi: 10.1021/acsami.8b14197. Epub 2018 Sep 26.

Abstract

In the global transition to a sustainable low-carbon economy, CO capture and storage technology plays a key role in reducing emissions. Metal-organic frameworks (MOFs) are crystalline materials with ultrahigh porosity, tunable pore size, and rich functionalities, holding the promise for CO capture. However, the intrinsic fragility and depressed processability of MOF crystals make the fabrication of the flexible MOF nanofibrous membrane (NFM) rather challenging. Herein, we demonstrate an effective strategy for the versatile preparation of self-supported and flexible HKUST-1 NFM with ultrahigh HKUST-1 loading (up to 82 wt %) and stable and uniform HKUST-1 growth through the combination of electrospinning, multistep seeded growth, and activation process. The loading rate of MOF is the highest level among the reported analogues. Significantly, the HKUST-1 NFM exhibits a prominent CO adsorption capacity of 3.9 mmol g, good CO/N selectivity, and remarkable recyclability. The CO capacity retains ∼95% (3.7 mmol g) of the initial value after 100 adsorption-desorption cycles, indicating that the HKUST-1 NFM has long-term and ultrastable recyclability and a significant practical value. Thus, the low-cost and scalable production pathway is able to convert MOF particles into self-supported and flexible NFMs, and thereby, they are better applied to the efficient postcombustion CO capture.

摘要

在向可持续低碳经济的全球转型中,CO2 捕集和封存技术在减少排放方面发挥着关键作用。金属有机骨架(MOF)是一种具有超高孔隙率、可调节孔径和丰富功能的晶体材料,有望用于 CO2 捕集。然而,MOF 晶体固有的脆弱性和较差的加工性能使得制备柔性 MOF 纳米纤维膜(NFM)极具挑战性。在此,我们通过静电纺丝、多步种子生长和活化过程相结合,展示了一种灵活的 HKUST-1 NFM 的通用制备方法,该 NFM 具有超高的 HKUST-1 负载量(高达 82wt%)和稳定且均匀的 HKUST-1 生长。MOF 的负载率是报道的类似物中最高的。值得注意的是,HKUST-1 NFM 表现出突出的 CO2 吸附容量(3.9mmol g)、良好的 CO/N2 选择性和优异的可循环性。在 100 次吸附-解吸循环后,CO2 容量保留初始值的约 95%(3.7mmol g),表明 HKUST-1 NFM 具有长期和超稳定的可循环性和重要的实际价值。因此,这种低成本且可扩展的生产途径能够将 MOF 颗粒转化为自支撑的柔性 NFMs,从而更好地应用于高效的燃烧后 CO2 捕集。

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