首页> 外文期刊>ACS applied materials & interfaces >UTSA-16 Growth within 3D-Printed Co-Kaolin Monoliths with High Selectivity for CO2/CH4, CO2/N-2, and CO2/H-2 Separation
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UTSA-16 Growth within 3D-Printed Co-Kaolin Monoliths with High Selectivity for CO2/CH4, CO2/N-2, and CO2/H-2 Separation

机译:用于CO 2 / CH4,CO 2 / N-2和CO2 / H-2分离的高选择性3D印刷的CO-KAOLINS含3D印刷的CO-KAOLIN石内的UTSA-16生长

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Honeycomb monoliths loaded with metal-organic frameworks (MOFs) are highly desirable adsorption contactors because of their low-pressure drop, rapid mass-transfer kinetics, and high-adsorption capacity. Moreover, three-dimensional (3D)-printing technology renders direct material modification a realistic and economic prospect. In this study, 3D printing was utilized to impregnate kaolin-based monolith with UTSA-16 metal formation precursor (Co), whereupon an internal growth was facilitated via a solvothermal synthesis approach. The cobalt weight loading in the kaolin support was varied systematically to optimize the MOF growth while retaining monolith mechanical integrity. The obtained UTSA-16 monolith with 90 wt % loading exhibited similar textural features and adsorption characteristics to its powder analogue while improving upon structural integrity. In comparison to previously developed 3D-printed UTSA-16 monoliths, the UTSA-16-kaolin monolith not only showed higher MOF loading but also higher compression stress, indicative of its robust structure. Furthermore, the 3D-printed UTSA-16-kaolin monolith displayed a comparable CO2 adsorption capacity to the UTSA-16 powder (3.1 vs 3.5 mmol/g at 25 degrees C and 1 bar), which was proportional to its loading. Selectivity values of 49, 238, and 3725 were obtained for CO2/CH4, CO2/N-2, and CO2/H-2, respectively, demonstrating good separation potential of the 3D-printed MOF monolith for various gas mixtures, as determined by both equilibrium and dynamic adsorption measurements. Overall, this study provides a novel route for the fabrication of UTSA-16-loaded monoliths, which demonstrate both high MOF loading and mechanical integrity that could be readily applied to various CO2 capture applications.
机译:装有金属 - 有机框架(MOF)的蜂窝料理是非常理想的吸附接触器,因为它们的低压降,快速传递动力学和高吸附能力。此外,三维(3D) - 打印技术呈现出直接的材料修改成为一种现实和经济的前景。在该研究中,利用3D印刷用UTSA-16金属形成前体(CO)浸渍基于高岭土的整体,于是通过溶剂热合成方法促进内部生长。高岭土载体中的钴体重加载是系统地改变的,以优化MOF生长,同时保持整体机械完整性。所得UTSA-16具有90wt%负载的含量与其粉末类似物具有类似的纹理特征和吸附特性,同时改善结构完整性。与以前显影的3D印刷的UTSA-16单溶胶相比,UTSA-16-Kaolin整料不仅显示出更高的MOF负载,而且较高的压缩应力,表示其鲁棒结构。此外,3D印刷的UTSA-16-Kaolin整料显示与UTSA-16粉末的相当的CO 2吸附能力(3.1Vs 3.5mmol / g,在25℃和1巴),其与其负载成比例。为CO 2 / CH 4,CO 2 / N-2和CO2 / H-2获得49,238和3725的选择性值,如下所确定的平衡和动态吸附测量。总体而言,本研究提供了一种用于制造UTSA-16负载的整料的新途径,其展示了可以容易地应用于各种CO 2捕获应用的高机械加载和机械完整性。

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