Interlayer and Intralayer Excitons in AlN/ WS2 Heterostructure

Materials (Basel). 2022 Nov 23;15(23):8318. doi: 10.3390/ma15238318.

Abstract

The study of intra and interlayer excitons in 2D semiconducting vdW heterostructures is a very hot topic not only from a fundamental but also an applicative point of view. Due to their strong light-matter interaction, Transition Metal Dichalcogenides (TMD) and group-III nitrides are particularly attractive in the field of opto-electronic applications such as photo-catalytic and photo-voltaic ultra-thin and flexible devices. Using first-principles ground and excited-state simulations, we investigate here the electronic and excitonic properties of a representative nitride/TMD heterobilayer, the AlN/WS2. We demonstrate that the band alignment is of type I, and low energy intralayer excitons are similar to those of a pristine WS2 monolayer. Further, we disentangle the role of strain and AlN dielectric screening on the electronic and optical gaps. These results, although they do not favor the possible use of AlN/WS2 in photo-catalysis, as envisaged in the previous literature, can boost the recently started experimental studies of 2D hexagonal aluminum nitride as a good low screening substrate for TMD-based electronic and opto-electronic devices. Importantly, our work shows how the inclusion of both spin-orbit and many-body interactions is compulsory for the correct prediction of the electronic and optical properties of TMD/nitride heterobilayers.

Keywords: 2D materials; BSE; DFT; GW; ab-initio; exciton; optical properties.

Grants and funding

This research was funded by European Union Seventh Framework Program under grant agreement no. 7 85219 Graphene Core2. C.A. acknowledges A. Saul and K. Boukari for the management of the computer cluster Rosa. CPU time was also granted by CINECA (ISCRA-B and ISCRA-C) and CRESCO ENEA HPC centers. This publication is based upon work from COST Action TUMIEE CA17126, supported by COST (European Cooperation in Science and Technology). O.P. and M.P. acknowledge financial funding from the EU MSCA-RISE project DiSeTCom (HORIZON2020, GA 823728). M.P. acknowledges NATO for the ESCAPE (grant G5936) project. O.P. acknowledges fundings from PRIN 2020 “PHOTO”.