Issue 3, 2022

Interface-dependent phononic and optical properties of GeO/MoSO heterostructures

Abstract

The interface-dependent electronic, vibrational, piezoelectric, and optical properties of van der Waals heterobilayers, formed by buckled GeO (b-GeO) and Janus MoSO structures, are investigated by means of first-principles calculations. The electronic band dispersions show that O/Ge and S/O interface formations result in a type-II band alignment with direct and indirect band gaps, respectively. In contrast, O/O and S/Ge interfaces give rise to the formation of a type-I band alignment with an indirect band gap. By considering the Betheā€“Salpeter equation (BSE) on top of G0W0 approximation, it is shown that different interfaces can be distinguished from each other by means of the optical absorption spectra as a consequence of the band alignments. Additionally, the low- and high-frequency regimes of the Raman spectra are also different for each interface type. The alignment of the individual dipoles, which is interface-dependent, either weakens or strengthens the net dipole of the heterobilayers and results in tunable piezoelectric coefficients. The results indicate that the possible heterobilayers of b-GeO/MoSO asymmetric structures possess various electronic, optical, and piezoelectric properties arising from the different interface formations and can be distinguished by means of various spectroscopic techniques.

Graphical abstract: Interface-dependent phononic and optical properties of GeO/MoSO heterostructures

Article information

Article type
Paper
Submitted
04 Oct 2021
Accepted
08 Dec 2021
First published
09 Dec 2021

Nanoscale, 2022,14, 865-874

Interface-dependent phononic and optical properties of GeO/MoSO heterostructures

M. Yagmurcukardes, Y. Sozen, M. Baskurt, F. M. Peeters and H. Sahin, Nanoscale, 2022, 14, 865 DOI: 10.1039/D1NR06534C

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