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无机-有机混合界面的第一性原理计算:从现有技术水平到最佳实践

First-principles calculations of hybrid inorganic-organic interfaces: from state-of-the-art to best practice.

作者信息

Hofmann Oliver T, Zojer Egbert, Hörmann Lukas, Jeindl Andreas, Maurer Reinhard J

机构信息

Institute of Solid State Physics, Graz University of Technology, NAWI Graz, Petersgasse 16/II, 8010 Graz, Austria.

Department of Chemistry, University of Warwick, Coventry, CV4 7AL, UK.

出版信息

Phys Chem Chem Phys. 2021 Apr 14;23(14):8132-8180. doi: 10.1039/d0cp06605b. Epub 2021 Mar 25.

Abstract

The computational characterization of inorganic-organic hybrid interfaces is arguably one of the technically most challenging applications of density functional theory. Due to the fundamentally different electronic properties of the inorganic and the organic components of a hybrid interface, the proper choice of the electronic structure method, of the algorithms to solve these methods, and of the parameters that enter these algorithms is highly non-trivial. In fact, computational choices that work well for one of the components often perform poorly for the other. As a consequence, default settings for one materials class are typically inadequate for the hybrid system, which makes calculations employing such settings inefficient and sometimes even prone to erroneous results. To address this issue, we discuss how to choose appropriate atomistic representations for the system under investigation, we highlight the role of the exchange-correlation functional and the van der Waals correction employed in the calculation and we provide tips and tricks how to efficiently converge the self-consistent field cycle and to obtain accurate geometries. We particularly focus on potentially unexpected pitfalls and the errors they incur. As a summary, we provide a list of best practice rules for interface simulations that should especially serve as a useful starting point for less experienced users and newcomers to the field.

摘要

无机-有机混合界面的计算表征可以说是密度泛函理论在技术上最具挑战性的应用之一。由于混合界面的无机和有机组分具有根本不同的电子性质,因此在电子结构方法、求解这些方法的算法以及进入这些算法的参数的适当选择上极具挑战性。事实上,对其中一个组分有效的计算选择,对另一个组分往往效果不佳。因此,一类材料的默认设置通常不适用于混合体系,这使得采用此类设置的计算效率低下,有时甚至容易产生错误结果。为了解决这个问题,我们讨论如何为所研究的体系选择合适的原子表示,强调计算中使用的交换相关泛函和范德华校正的作用,并提供关于如何有效收敛自洽场循环和获得精确几何结构的技巧。我们特别关注潜在的意外陷阱及其导致的误差。作为总结,我们提供了一份界面模拟的最佳实践规则清单,这对于该领域经验较少的用户和新手尤其有用,可作为一个有益的起点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff99/8237233/38b2f02fb9b5/d0cp06605b-f1.jpg

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