论文标题

CO $ _2 $限制在MG-MOF-74的结构和动力学之间的相关性与结晶间空间的作用:分子动力学仿真研究

Correlation between structure and dynamics of CO$_2$ confined in Mg-MOF-74 and the role of inter-crystalline space: A molecular dynamics simulation study

论文作者

Dhiman, I., Berg, M. C., Cole, David R., Gautam, Siddharth

论文摘要

MG-MOF-74是一种金属有机框架(MOF),具有高容量$ _2 $吸附的能力。鉴于MG-MOF-74中Co $ _2 $限制对于捕获和存储应用的重要性,因此重要的是要了解MG-MOF-74毛孔中CO $ _2 $的结构和动态行为。虽然大多数分子模拟研究都使用纳米孔底物的理想单晶模型,但结晶间空间的存在已被证明对吸附流体的吸附,结构和动力学具有深远的影响。为了解决这些问题,我们报告了一项分子动力学仿真研究,在300 K,Co $ _2 $的300 K中,限制在几种MG-MOF-74模型中,并系统地插入了不同宽度的结晶间距。 Co $ _2 $的结构和动态行为均以5种型号的MG-MOF-74模型进行了研究,每个模型均以4种不同的负载进行。除了在孔的中心相对较弱的吸附外,在MG-MOF-74的毛孔的外围发现了Co $ _2 $吸附的六个强度。在插入结晶间距时,在靠近孔口开口的结晶空间中看到了另外六个强吸附的位点。这些附加的地点会随着结晶间空间的扩大,并且吸附在孔中心的宾客分子的种群以牺牲外围人群为代价。来宾分子的这种重新分布对它们的动态具有重要意义。尽管在没有结晶间空间的模型中,在较高的载荷下发现翻译运动的较慢,因为引入了更宽的结晶空间,因此观察到转化扩散率的异常负载依赖性。通常,插入结晶间距可以增强来宾分子的翻译和旋转运动。此处报告的结果为碳捕获和存储提供了宝贵的见解。

Mg-MOF-74 is a metal-organic framework (MOF) that exhibits a high capacity for CO$_2$ adsorption. Given the importance of CO$_2$ confinement in Mg-MOF-74 for capture and storage applications, it is important to understand the structural and dynamical behavior of CO$_2$ in Mg-MOF-74 pores. While most molecular simulation studies use ideal single crystal models of nano-porous substrates, the existence of inter-crystalline space has been shown to have profound effects on the sorption, structure and dynamics of the adsorbed fluid. To address these issues, we report a molecular dynamics simulation study at 300 K, of CO$_2$ confined in several models of Mg-MOF-74 with systematically inserted inter-crystalline spacing of different widths. Both structural and dynamical behavior of CO$_2$ is studied in 5 models of Mg-MOF-74, each at 4 different loadings. Six strong sites of CO$_2$ adsorption are found at the periphery of the pores of Mg-MOF-74 in addition to a relatively weak adsorption at the center of the pore. On insertion of inter-crystalline spacing, additional six sites of strong adsorption are seen in the inter-crystalline space close to the pore opening. These additional sites delocalize as the inter-crystalline space is widened and the population of guest molecules adsorbed at the pore center grows at the expense of peripheral population. This redistribution of guest molecules has important implications for their dynamics. While in the model without inter-crystalline space, translation motion is found to be slower at higher loadings, as wider inter-crystalline space is introduced, anomalous loading dependence of translational diffusivity is observed. In general, inserting inter-crystalline spacing is found to enhance both translational as well as rotational motion of the guest molecules. The results reported here provide valuable insight to carbon capture and storage.

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