Fingerprint Raman spectroscopy for two-dimensional MoS2xSe2(1−x) alloys

Two-dimensional transition metal dichalcogenides (TMDs) and alloys based on them, is a promising platform for creating opto- and nanoelectronic devices. For layered alloys, there is a strong need to theoretically determine the frequencies of vibrational modes and dependences of their energies on the stoichiometric composition. By comparing experimentally measured Raman modes with theoretical predictions, it becomes possible to determine the stoichiometric composition of the manufactured alloys. In this work, we investigated the vibrational properties of monolayer MoS2x Se2(1−x) alloys utilizing density functional theory method and confirmed them experimentally by Raman spectroscopy. The dependence of A1ʹ and E12g ‘dactylographic’ modes on the stoichiometric composition of alloys has been calculated. When in pure MoSe2 structure Se atoms are substituted by S atoms, the in-plane E12g (S-Mo), E12g (Se-Mo) and out-plane A1ʹ (S-Mo) modes shifted linearly in x to higher frequencies, while the out-plane A1ʹ (Se-Mo) mode did the same in nonlinear way. We also identified the E12g (Se-Mo-S) mode, which specific for the MoS2x Se2(1-x) alloys and does not appear in pure two-component TMDs. © 2024 IOP Publishing Ltd.

Authors
Pimenov N. , Kartsev A. , Lebedeva E. , Mishina E.
Number of issue
23
Language
English
Status
Published
Number
235303
Volume
36
Year
2024
Organizations
  • 1 MIREA—Russian Technological University, 78 Vernadsky Avenue, Moscow, 119454, Russian Federation
  • 2 Computing Center of the Far Eastern Branch, the Russian Academy of Sciences, Khabarovsk, 680000, Russian Federation
  • 3 Peoples’ Friendship University of Russia (RUDN University), 6 Miklukho-Maklaya St, Moscow, 117198, Russian Federation
Keywords
density functional perturbation theory; Raman spectroscopy; semiconductors; two-dimensional alloys; two-dimensional transition metal dichalcogenides
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