论文标题

ZIF-8的自组装和热分解的早期阶段的计算机模拟

Computer Simulation of the Early Stages of Self-Assembly and Thermal Decomposition of ZIF-8

论文作者

Balestra, Salvador R. G., Semino, Rocio

论文摘要

我们采用全原子良好的元动力学模拟来研究基准金属有机框架ZIF-8的成核和晶体分解的早期阶段的机械细节。为此,我们开发了一个力场并验证了一个力场,该力场通过摩尔斯潜在功能形式可靠地模拟了协调键的模式,并采用了阳离子和阴离子虚拟原子来捕获协调对称性。我们还探索了一组与物理相关的集体变量,并仔细选择了一个适当的子集来解决我们手头的问题。 Zn-N连接迅速提高后,我们观察到小簇的蒸发,有利于一些大簇,这导致形成了无定形的高度连接聚集体。观察到Zn(MIM)42和Zn(MIM)3-络合物,其寿命为几个picseconds,而较大的结构(例如4-,5和6元的环)具有几个纳米环的寿命更长的寿命。自由配体充当``模板剂''的形成sodalite笼子。 ZIF-8晶体分解导致形成玻璃相。我们的发现有助于对MOF合成的基本理解,这为控制合成产品铺平了道路。此外,我们开发的力场和方法可以应用于模型的解决方案过程,这些过程需要除了ZIF-8以外的其他ZIF的协调键反应性。

We employ all-atom well-tempered metadynamics simulations to study the mechanistic details of both the early stages of nucleation and crystal decomposition for the benchmark metal-organic framework ZIF-8. To do so, we developed and validated a force field that reliably models the modes of coordination bonds via a Morse potential functional form and employs cationic and anionic dummy atoms to capture coordination symmetry. We also explored a set of physically relevant collective variables and carefully selected an appropriate subset for our problem at hand. After a rapid increase of the Zn-N connectivity, we observe the evaporation of small clusters in favor of a few large clusters, that lead to the formation of an amorphous highly-connected aggregate. Zn(MIm)42- and Zn(MIm)3- complexes are observed, with lifetimes in the order of a few picoseconds, while larger structures, such as 4-, 5- and 6-membered rings, have substantially longer lifetimes of a few nanoseconds. The free ligands act as ``templating agents'' for the formation of the sodalite cages. ZIF-8 crystal decomposition results in the formation of a vitreous phase. Our findings contribute to a fundamental understanding of MOF's synthesis that paves the way to controlling synthesis products. Furthermore, our developed force field and methodology can be applied to model solution processes that require coordination bond reactivity for other ZIFs besides ZIF-8.

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