Yikang Zhao, Zhongzheng Zhang, Qiang Gao* and Wei Wei*,
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引用次数: 0
摘要
金属有机骨架(mof)是一类具有高表面积、化学可调性和稳定性的多孔材料,在气体吸附和分离,特别是二氧化碳捕获方面的应用得到了广泛的研究。然而,在潮湿条件下,它们的CO2捕集能力往往会下降,不能满足实际应用要求。在此,我们提出了一种简单的合成方法,将氨基酸(aa)加入到超稳定的MIP-206-OH MOF中,以构建一系列MIP-206-OH- aa材料。在这些材料中,MIP-206-OH- gly表现出优异的CO2捕集性能,其捕集能力分别为48.4 cm3 g-1 (1 bar, 273 K)和317 cm3 g-1 (30 bar, 273 K),分别比原始MIP-206-OH材料提高了92.8和71.9%。此外,MIP-206-OH-Gly和MIP-206-OH-Ala在潮湿条件下表现出增强的二氧化碳捕获性能,并表现出优异的稳定性,即使在10个循环后也能保持其性能。本研究提供了一种简单的方法来构建氨基酸功能化的纳米多孔mof,以促进二氧化碳的捕获,并强调了这种策略作为干湿条件下有效和可扩展的碳捕获解决方案的潜力。
Amino Acid-Functionalized Nanoporous Metal–Organic Frameworks for Boosting CO2 Capture under Dry and Humid Conditions
Metal–organic frameworks (MOFs), a class of porous materials, featuring high surface areas, chemical tunability and stability, have been extensively studied for their applications in gas adsorption and separation, particularly in carbon dioxide (CO2) capture. However, their CO2 capture capacities often decrease under humid conditions and cannot meet practical application requirements. Herein, we present a facile postsynthetic method to incorporate amino acids (AAs) into an ultrastable MIP-206-OH MOF to construct a series of MIP-206-OH-AA materials. Among these materials, MIP-206-OH-Gly exhibited superior CO2 capture performance, achieving capacities of 48.4 cm3 g–1 (1 bar, 273 K) and 317 cm3 g–1 (30 bar, 273 K), which showed 92.8 and 71.9% enhancement compared to the pristine MIP-206-OH materials, respectively. Furthermore, MIP-206-OH-Gly and MIP-206-OH-Ala exhibited enhanced CO2 capture performance under humid conditions and exhibited exceptional stability, maintaining their performance even after 10 cycles. This study provides a facile method to construct amino acid-functionalized nanoporous MOFs for boosting CO2 capture and underscores the potential of this strategy as an effective and scalable solution for carbon capture under dry and humid conditions.
期刊介绍:
ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.