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Iron-Decorated, Functionalized Metal Organic Framework for High-Capacity Hydrogen Storage: First-Principles Calculations

机译:铁装饰的功能化金属有机框架,用于大容量氢的存储:第一性原理计算

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We perform ab initio density functional theory calculations to investigate the hydrogen storage capacity in the Fe-decorated, OH-functionalized isoreticular metal organic framework 16. The hydroxyl group (OH) is used as an anchor to hold an Fe atom firmly on the metal organic framework, and the hydrogen molecules are bound to the Fe atom through hybridization with Fe d orbitals. We show that each Fe atom in this modified MOF can bind up to four H2 molecules with an adequate binding energy for room-temperature storage (~29 kJ/mol). The transition from the high-spin to the low-spin configuration is found to be crucial in enhancing the number of bound H2 as well as the binding energy. Equilibrium thermodynamics calculations accompanied with grand canonical Monte Carlo simulations give a very promising result, namely, a reversibly usable gravimetric storage density of 6.0 wt % at 298 K and 100 atm.
机译:我们执行从头算密度泛函理论计算,以研究Fe装饰的,OH-官能化的等网状金属有机骨架16中的储氢能力。羟基(OH)被用作固定金属上的Fe原子的锚氢分子通过与Fe d轨道杂交而与Fe原子键合。我们表明,在这种改性的MOF中,每个Fe原子最多可以结合四个H2分子,并具有足够的结合能用于室温存储(〜29 kJ / mol)。发现从高旋转构型到低旋转构型的转变对于增加结合的H 2的数目以及结合能至关重要。平衡热力学计算以及经典的蒙特卡洛模拟给出了非常有希望的结果,即在298 K和100 atm时可逆使用的重量存储密度为6.0 wt%。

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