Chen Yanling, Bai Xingyang, Liu Dahuan, Fu Xiaolong, Yang Qingyuan
State Key Laboratory of Organic-Inorganic Composites; Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Institute of Nuclear Physics and Chemistry, China Academy of Engineering Physics, Mianyang, Sichuan 621900, China.
ACS Appl Mater Interfaces. 2022 Jun 1;14(21):24980-24991. doi: 10.1021/acsami.2c06966. Epub 2022 May 22.
Effective separation of hydrogen isotopes still remains one of the extremely challenging tasks in industry. Compared to the present methods that are energy- and cost-intensive, quantum sieving technology based on nanostructured materials offers a more efficient alternative approach, where metal-organic frameworks (MOFs) featuring open metal sites (OMS) can serve as an ideal platform. Herein, a combination of periodic density functional theory (DFT) with dispersive correction and high-throughput molecular simulation was employed from thermodynamic viewpoints to explore the D/H separation properties of 929 experimental MOFs bearing a copper-paddlewheel unit. The DFT calculations showed that there is a negligible rotational energy barrier for the molecule adsorbed at the OMS, and the movement of the Cu atoms along the Cu-Cu axis vector almost has no influence on the interaction energy. On the basis of the DFT results, a new force field with a proposed cutoff scheme was developed to accurately describe the strong isotope-OMS interaction. Under practical conditions (40 K and 1.0 bar), large-scale computational material screening demonstrated that the OMS interaction plays a more important role in highly selective materials and ignoring such interactions can lead to completely wrong identification of the most promising materials. Using the adsorption selectivity and adsorbent performance score as evaluation metrics, this work demonstrated that the materials with topology notably outperform many benchmark adsorbents reported so far.
氢同位素的有效分离仍是工业中极具挑战性的任务之一。与目前能源和成本密集型的方法相比,基于纳米结构材料的量子筛分技术提供了一种更高效的替代方法,其中具有开放金属位点(OMS)的金属有机框架(MOF)可作为理想平台。在此,从热力学观点出发,采用周期性密度泛函理论(DFT)与色散校正以及高通量分子模拟相结合的方法,探索929种带有铜桨轮单元的实验性MOF的D/H分离特性。DFT计算表明,吸附在OMS上的分子的旋转能垒可忽略不计,并且Cu原子沿Cu-Cu轴矢量的移动对相互作用能几乎没有影响。基于DFT结果,开发了一种具有建议截断方案的新力场,以准确描述强同位素-OMS相互作用。在实际条件(40 K和1.0 bar)下,大规模计算材料筛选表明,OMS相互作用在高选择性材料中起更重要的作用,如果忽略这种相互作用可能导致对最有前景材料的完全错误识别。以吸附选择性和吸附剂性能分数作为评估指标,这项工作表明具有特定拓扑结构的材料明显优于迄今为止报道的许多基准吸附剂。