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深入研究无客体和富氦的I型和II型笼形水合物:第一性原理计算研究

Delving into guest-free and He-filled sI and sII clathrate hydrates: a first-principles computational study.

作者信息

Yanes-Rodríguez Raquel, Cabrera-Ramírez Adriana, Prosmiti Rita

机构信息

Institute of Fundamental Physics (IFF-CSIC), CSIC, Serrano 123, 28006 Madrid, Spain.

Doctoral Programme in Theoretical Chemistry and Computational Modelling, Doctoral School, Universidad Autónoma de Madrid, Spain.

出版信息

Phys Chem Chem Phys. 2022 Jun 1;24(21):13119-13129. doi: 10.1039/d2cp00701k.

Abstract

The dynamics of the formation of a specific clathrate hydrate as well as its thermodynamic transitions depend on the interactions between the trapped molecules and the host water lattice. The molecular-level understanding of the different underlying processes benefits not only the description of the properties of the system, but also allows the development of multiple technological applications such as gas storage, gas separation, energy transport, In this work we investigate the stability of periodic crystalline structures, such as He@sI and He@sII clathrate hydrates by first-principles computations. We consider such host water networks interacting with a guest He atom using selected density functional theory approaches, in order to explore the effects on the encapsulation of a light atom in the sI/sII crystals, by deriving all energy components (guest-water, water-water, guest-guest). Structural properties and energies were first computed by structural relaxations of the He-filled and empty sI/sII unit cells, yielding lattice and compressibility parameters comparable to experimental and theoretical values available for those hydrates. According to the results obtained, the He enclathration in the sI/sII unit cells is a stabilizing process, and both He@sI and He@sII clathrates, considering single cage occupancy, are predicted to be stable whatever the XDM or D4 dispersion correction applied. Our results further reveal that despite the weak underlying interactions the He encapsulation has a rather notable effect on both lattice parameters and energetics, with the He@sII being the most energetically favorable in accord with recent experimental observations.

摘要

特定笼形水合物的形成动力学及其热力学转变取决于被捕获分子与主体水晶格之间的相互作用。从分子层面理解这些不同的潜在过程,不仅有助于描述系统的性质,还能推动多种技术应用的发展,如气体储存、气体分离、能量传输等。在这项工作中,我们通过第一性原理计算研究了周期性晶体结构的稳定性,例如He@sI和He@sII笼形水合物。我们使用选定的密度泛函理论方法,考虑此类主体水网络与客体He原子的相互作用,通过推导所有能量分量(客体 - 水、水 - 水、客体 - 客体),来探索轻原子封装在sI/sII晶体中的影响。首先通过对填充He和空的sI/sII晶胞进行结构弛豫来计算结构性质和能量,得到的晶格参数和压缩性参数与这些水合物的实验值和理论值相当。根据所得结果,He包封在sI/sII晶胞中是一个稳定过程,并且无论应用XDM还是D4色散校正,考虑单笼占据的情况下,He@sI和He@sII笼形水合物预计都是稳定的。我们的结果进一步表明,尽管潜在相互作用较弱,但He封装对晶格参数和能量学都有相当显著的影响,其中He@sII在能量方面最为有利,这与最近的实验观察结果一致。

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