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Molecular Simulation Study on Catenation Effects on Hydrogen Uptake Capacity of MOFs

机译:分子仿真研究MOFS氢气摄取能力的分析效应

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In order to investigate the reason for the higher capacity of the interpenetrating isoreticular metal-organic frameworks (IRMOFs) at lower temperatures, we performed grand canonical Monte Carlo (GCMC) simulations and molecular dynamics simulations at 77K for a set of the interpenetrating IRMOF-11 and the non-interpenetrating counterpart IRMOF-12. From the GCMC simulations, we found universal force field (UFF) is better for describing the hydrogen adsorption behavior than DREIDING force field. The results from the molecular dynamics simulations showed the density of adsorbed hydrogen molecules was increased in the various pores created by the catenation of IRMOF comparing to that of the pores in IRMOF-12. Moreover, the adsorbed hydrogen molecules in IRMOF-11 have the smaller diffusion coefficients. It means that their dynamic behavior is more restricted because of the complexity of the interpenetrating network of IRMOF-11. These results of molecular simulations show the small pores created by the catenation are important for the increase of hydrogen adsorption on IRMOF-11 at lower temperatures.
机译:为了调查较低温度下互持同种式金属 - 有机骨架(IRMOFS)的较高容量的原因,我们在77K上进行了大规范蒙特卡罗(GCMC)模拟和分子动力学模拟,以换成一组互穿IRMOF-11和非互穿对应物IRMOF-12。从GCMC仿真来看,我们发现通用力场(UFF)更好地描述氢吸附行为而不是Dreidipe Force场。分子动力学模拟的结果表明,通过将IRMOF的催化与IRMOF-12中的孔相比,在各种孔中增加了吸附的氢分子的密度。此外,IRMOF-11中的吸附氢分子具有较小的扩散系数。这意味着由于IRMOF-11的互通网络的复杂性,它们的动态行为更加受限。这些分子模拟的结果显示了由催化产生的小孔对于在较低温度下对IRMOF-11的氢吸附的增加是重要的。

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