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arXiv · 2107.00477

Towards targeted kinetic trapping of organic-inorganic interfaces: A computational case study

Abstract

Properties of inorganic-organic interfaces, such as their interface dipole, strongly depend on the structural arrangements of the organic molecules. A prime example is tetracyanoethylene (TCNE) on Cu(111), which shows two different phases with significantly different work functions. However, the thermodynamically pre-ferred phase is not always the one that is best suited for a given application. Rather, it may be desirable to selectively grow a kinetically trapped structure. In this work, we employ density functional theory and transi-tion state theory to discuss under which conditions such a kinetic trapping might be possible for the model system of TCNE on Cu. Specifically, we want to trap the molecules in the first layer in a flat-lying orientation. This requires temperatures that are sufficiently low to suppress the re-orientation of the molecules, which is thermodynamically more favorable for high dosages, but still high enough to enable ordered growth through diffusion of molecules. Based on the temperature-dependent diffusion and re-orientation rates, we propose a temperature range at which the re-orientation can be successfully suppressed.

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Anna Werkovits, Andreas Jeindl, Lukas Hörmann, Johannes Cartus, Oliver T. Hofmann. 2021-06-30. Towards targeted kinetic trapping of organic-inorganic interfaces: A computational case study. https://doi.org/10.1021/acsphyschemau.1c00015

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