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Methane Adsorption in Zr-Based MOFs: Comparison andCritical Evaluation of Force Fields

机译:Zr基MOF中甲烷的吸附:比较和力场的严格评估

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摘要

The search for nanoporous materials that are highly performing for gas storage and separation is one of the contemporary challenges in material design. The computational tools to aid these experimental efforts are widely available, and adsorption isotherms are routinely computed for huge sets of (hypothetical) frameworks. Clearly the computational results depend on the interactions between the adsorbed species and the adsorbent, which are commonly described using force fields. In this paper, an extensive comparison and in-depth investigation of several force fields from literature is reported for the case of methane adsorption in the Zr-based Metal–Organic Frameworks UiO-66, UiO-67, DUT-52, NU-1000, and MOF-808. Significant quantitative differences in the computed uptake are observed when comparing different force fields, but most qualitative features are common which suggests some predictive power of the simulations when it comes to these properties. More insight into the host–guest interactions is obtained by benchmarking the force fields with an extensive number of ab initiocomputed single molecule interaction energies. This analysis at themolecular level reveals that especially ab initio derived force fieldsperform well in reproducing the ab initio interaction energies. Finally,the high sensitivity of uptake predictions on the underlying potentialenergy surface is explored.
机译:寻求在气体存储和分离方面具有高性能的纳米多孔材料是材料设计的当代挑战之一。可以广泛使用帮助这些实验工作的计算工具,并且通常针对大量(假设的)框架计算吸附等温线。显然,计算结果取决于被吸附物质和吸附剂之间的相互作用,这通常使用力场来描述。本文针对Zr基金属有机框架UiO-66,UiO-67,DUT-52,NU-1000中甲烷吸附的情况,对文献中的几种力场进行了广泛的比较和深入研究。和MOF-808。当比较不同的力场时,在计算的吸收量中存在明显的数量差异,但是大多数定性特征是常见的,这暗示了模拟对这些特性的预测能力。通过用大量的从头算起基准力场,可以更深入地了解主客互动计算的单分子相互作用能。这个分析在分子水平揭示了特别是从头算起的力场在再现从头算起的交互作用能量方面表现出色。最后,摄取预测对潜在潜能的高度敏感性探索能量表面。

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