Modulating the Optoelectronic Properties of MoS2 by Highly Oriented Dipole-Generating Monolayers

ACS Appl Mater Interfaces. 2021 Jul 14;13(27):32590-32597. doi: 10.1021/acsami.1c09035. Epub 2021 Jun 30.

Abstract

The noncovalent functionalization of two-dimensional materials (2DMs) with bespoke organic molecules is of central importance for future nanoscale electronic devices. Of particular interest is the incorporation of molecular functionalities that can modulate the physicochemical properties of the 2DMs via noninvasive external stimuli. In this study, we present the reversible modulation of the photoluminescence, spectroscopic properties (Raman), and charge transport characteristics of molybdenum disulfide (MoS2)-based devices via photoisomerization of a self-assembled monolayer of azobenzene-modified triazatriangulene molecules. The observed (opto)electronic modulations are explained by the n-type doping of the MoS2 lattice induced by the photoisomerization of the highly ordered azobenzene monolayer. This novel behavior could have profound effects on future composite 2DM-based (opto)electronics.

Keywords: 2D materials; FET; MoS2; Raman spectroscopy; noncovalent functionalization; photoluminescence.