首页> 外文期刊>Journal of Colloid and Interface Science >Copper benzene-1,3,5-tricarboxylate (Cu-BTC) metal-organic framework (MOP) and porous carbon composites as efficient carbon dioxide adsorbents
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Copper benzene-1,3,5-tricarboxylate (Cu-BTC) metal-organic framework (MOP) and porous carbon composites as efficient carbon dioxide adsorbents

机译:铜苯-1,3,5-三羧酸盐(Cu-BTC)金属 - 有机骨架(拖把)和多孔碳复合材料,如有效的二氧化碳吸附剂

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摘要

The development of novel porous materials for CO2 capture and storage has received increasing attention due to the global warming problem. The aim of this work was to develop novel composites by merging Cu-BTC framework and porous carbon materials, including ordered mesoporous non-activated carbon (OMC), ordered mesoporous activated carbon (AC), and nitrogen-containing microporous carbon (NC) as efficient adsorbents for CO2 capture. The morphology, porosity and surface area of the parent materials and composites were fully characterized. All resulting composites were identified as microporous materials with type I adsorption isotherm. During synthesis of these composites, additional micropores were formed in the interfacial region between heterogeneous phases, which greatly enhances both their specific surface area and porosity. As compared to the parent materials, namely carbons and Cu-BTC, the CO2 uptake capability of the composites is greatly enhanced due to the presence of micropores at the interface. Specifically, NC-Cu-BTC composite exhibited the highest CO2 capacity with similar to 8.24 and similar to 4.51 mmol/g under 1 bar at 0 and 25 degrees C, respectively. These novel porous carbon/MOF composites may have great potential for adsorption application including CO2 capture. (C) 2018 Elsevier Inc. All rights reserved.
机译:由于全球变暖问题,新型多孔材料的开发用于二氧化碳捕获和储存的影响。这项工作的目的是通过合并Cu-BTC框架和多孔碳材料来开发新颖的复合材料,包括有序的中孔非活性炭(OMC),有序的介孔活性炭(AC)和含氮的微孔碳(NC),如有效吸附剂用于CO2捕获。完全表征了亲本材料和复合材料的形态学,孔隙率和表面积。所有得到的复合材料都被鉴定为具有I型吸附等温线的微孔材料。在合成这些复合材料期间,在异质相之间的界面区域中形成额外的微孔,这大大增强了它们的特定表面积和孔隙率。与母材料相比,即碳碳和Cu-BTC,由于界面处的微孔存在,复合材料的CO2摄取能力大大提高。具体地,NC-Cu-BTC复合材料表现出最高的CO 2容量,其与8.24相似,并且分别在0和25摄氏度下在1巴下类似于4.51mmol / g。这些新型多孔碳/ MOF复合材料可能具有很大的吸附应用潜力,包括CO 2捕获。 (c)2018 Elsevier Inc.保留所有权利。

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