MRS Meetings and Events

 

DS03.09.05 2023 MRS Fall Meeting

Computational Prediction of Stacking Mode in Conductive Two-Dimensional Metal-Organic Frameworks—An Exploration of Chemical and Electrical Property Changes

When and Where

Nov 30, 2023
3:45pm - 4:00pm

Sheraton, Second Floor, Liberty B/C

Presenter

Co-Author(s)

Mingyu Jeon1,Jihan Kim1

KAIST1

Abstract

Mingyu Jeon1,Jihan Kim1

KAIST1
Conductive two-dimensional metal-organic frameworks (2D MOFs) have attracted interest as they induce strong charge delocalization and improve charge carrier mobility and concentration. However, characterizing their stacking mode depends on expensive and time-consuming experimental measurements. Here, we construct a potential energy surface (PES) map database for 36 2D MOFs using density functional theory (DFT) for the experimentally synthesized and non-synthesized 2D MOFs to predict their stacking mode. The DFT PES results successfully predict the experimentally synthesized stacking mode with an accuracy of 92.9% and explain the coexistence mechanism of dual stacking modes in a single compound. Furthermore, we analyze the chemical (i.e. host-guest interaction) and electrical (i.e. electronic structure) property changes affected by stacking mode. The DFT results show that the host-guest interaction can be enhanced by the transition from AA to AB stacking, taking H<sub>2</sub>S gas as a case study. The electronic band structure calculation confirms that as AB stacking displacement increases, in-plane charge transport pathway is reduced while the out-of-plane charge transport pathway is maintained or even increased. These results indicate that there is a trade-off between chemical and electrical properties in accordance with the stacking mode.

Keywords

2D materials

Symposium Organizers

James Chapman, Boston University
Victor Fung, Georgia Institute of Technology
Prashun Gorai, National Renewable Energy Laboratory
Qian Yang, University of Connecticut

Symposium Support

Bronze
Elsevier B.V.

Publishing Alliance

MRS publishes with Springer Nature