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Cooperative CO2 adsorption promotes high CO2 adsorption density over wide optimal nanopore range

机译:合作二氧化碳吸附在宽最佳纳米孔范围内促进高CO2吸附密度

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Separation of CO2 based on adsorption, absorption, and membrane techniques is a crucial technology necessary to address current global warming issues. Porous media are essential for all these approaches and understanding the nature of the porous structure is important for achieving highly efficient CO2 adsorption. Porous carbon is considered to be a suitable porous media for investigating the fundamental mechanisms of CO2 adsorption, because of its simple morphology and its availability in a wide range of well-defined pore sizes. In this study, we investigated the dependence of CO2 adsorption on pore structures such as pore size, volume, and specific surface area. We also studied slit-shaped and cylindrical pore morphologies based on activated carbon fibers of 0.6-1.7nm and carbon nanotubes of 1-5nm, respectively, with relatively uniform structures. Porous media with larger specific surface areas gave higher CO2 adsorption densities than those of media having larger pore volumes. Narrower pores gave higher adsorption densities because of deep adsorption potential wells. However, at a higher pressure CO2 adsorption densities increased again in nanopores including micropores and small mesopores. The optimal pore size ranges of CO2 adsorption in the slit-shaped and cylindrical carbon pores were 0.4-1.2 and 1.0-2.0nm, respectively, although a high adsorption density was only expected for the narrow carbon nanopores from adsorption potentials. The wider nanopore ranges than expected nanopore ranges are reasonable when considering intermolecular interactions in addition to CO2-carbon pore interactions. Therefore, cooperative adsorption among CO2 in relatively narrow nanopores can allow for high density and high capacity adsorption.
机译:基于吸附,吸收和膜技术的CO 2分离是解决当前全球变暖问题所必需的重要技术。多孔介质对于所有这些方法至关重要,并且了解多孔结构的性质对于实现高效的CO 2吸附是重要的。多孔碳被认为是一种合适的多孔介质,用于研究CO 2吸附的基本机制,因为其形态简单,其在各种明确的孔径范围内的可用性。在这项研究中,我们研究了CO2吸附对孔隙结构的依赖性,例如孔径,体积和比表面积。我们还基于0.6-1.7nm和1-5nm的碳纳米管的活性炭纤维进行狭缝形和圆柱形孔形态,其结构分别具有相对均匀的结构。具有较大比表面积的多孔介质比具有较大孔体积的培养基更高的CO 2吸附密度。由于深吸吸附潜在的孔,较窄的孔隙给出了更高的吸附密度。然而,在较高的压力下,CO 2在包括微孔和小型中孔的纳米孔中再次增加吸附密度。狭缝形状和圆柱形碳孔中的CO 2吸附的最佳孔径范围分别为0.4-1.2和1.0-2.0nm,尽管仅预期窄碳纳米孔免受吸附电位的高吸附密度。在除CO 2-碳孔相互作用外,较宽的纳米孔范围比预期的纳米孔范围相比是合理的。因此,相对窄的纳米孔中CO 2之间的协同吸附可以允许高密度和高容量吸附。

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