Mg-MOF-74 异构体的 H2 吸附等温线:利用热化学模型和密度泛函理论的综合方法

Thuy-Trang Nguyen, Cao Cong-Phuong, Phong Le-Hoang, Linh Nguyen-Hoang, Nam Vu-Hoang, Toan Nguyen The, Thang Phan Bach
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引用次数: 0

摘要

利用从密度泛函理论计算中获得的吸附能和振动频率作为输入变量,建立了一个热化学模型来计算原始 Mg-MOF-74 框架的 H2 吸附等温线及其计算设计的等值线。该模型合理地复制了原始框架在 -196oC 至 1 bar 压力范围内的实验吸附等温线。与原始框架相比,新的 Mg-MOF-74 等值线的最强吸附位点在较低的压力下呈现饱和状态,尽管吸附能量较低。这强调了振动、旋转和平移贡献对全面评估吸附位点吸附性能的重要性。由于位点-位点相互作用只考虑了最强的吸附位点,因此该模型只适用于次要位点的低覆盖率。因此,在二级吸附位点的累积覆盖率与最强位点相当的较高温度和压力范围内,该模型严重高估了原始异构体的吸氢量。与此相反,在-40oC 至 60oC 的特定温度范围内,在高达 25 巴的压力范围内,在次级吸附位点覆盖率较低的情况下,该模型对新异构体仍然有效。其预测结果表明,与原始框架相比,新框架的性能有了显著提高。特别是,在上述温度变化范围内,当压力为 25 巴时,它的重量吸氢值介于 2.8 wt% 和 1.9 wt% 之间,大大高于原始框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
H2 adsorption isotherms of Mg-MOF-74 isoreticulars: An integrated approach utilizing a thermochemical model and density functional theory
A thermochemical model was developed to calculate the H2 adsorption isotherm of theoriginal Mg-MOF-74 framework, and its computationally designed isoreticular employing the adsorption energies and vibrational frequencies obtained from density functional theory calculations as input variables. The model reasonably replicates the experimental adsorption isotherm of the original framework at -196oC within the pressure range up to 1 bar. The strongest adsorption site of the new Mg-MOF-74 isoreticular exhibits saturation at lower pressure compared to the original one, despite a lower adsorption energy. This emphasizes the importance of vibrational, rotational, and translational contributions for comprehensively assessing the site’s adsorption performance. Because only the strongest adsorption site was taken into account for the site-site interaction, the model is only valid for low coverage rates of secondary sites. Consequently, it strongly overestimates the hydrogen uptake of the original isoreticular at higher temperature and pressure ranges where the cumulative coverage rate of the secondary adsorption sites is comparable to that of the strongest sites. In contrast, the model remains valid for the new isoreticular at a specific temperature between -40oC and 60oC within the pressure range up to 25 bar where the coverage rate of the secondary adsorption site is low. Its predictions highlights the significantly improved performance of the new framework compared to the original framework. Specially, it achieves a gravimetric hydrogen uptake value between 2.8 wt% and 1.9 wt% at a pressure of 25 bar within the mentioned temperature swing which is substantially higher than that of the original framework.
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