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Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique

In this work, the Raman spectroscopy mapping technique is used for the analysis of mechanical strain in Bi(2)Se(3) thin films of various (3–400 nm) thicknesses synthesized by physical vapour deposition on amorphous quartz and single-layer graphene substrates. The evaluation of strain effects is base...

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Autores principales: Niherysh, K. A., Andzane, J., Mikhalik, M. M., Zavadsky, S. M., Dobrokhotov, P. L., Lombardi, F., Prischepa, S. L., Komissarov, I. V., Erts, D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419075/
https://www.ncbi.nlm.nih.gov/pubmed/36133484
http://dx.doi.org/10.1039/d1na00390a
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author Niherysh, K. A.
Andzane, J.
Mikhalik, M. M.
Zavadsky, S. M.
Dobrokhotov, P. L.
Lombardi, F.
Prischepa, S. L.
Komissarov, I. V.
Erts, D.
author_facet Niherysh, K. A.
Andzane, J.
Mikhalik, M. M.
Zavadsky, S. M.
Dobrokhotov, P. L.
Lombardi, F.
Prischepa, S. L.
Komissarov, I. V.
Erts, D.
author_sort Niherysh, K. A.
collection PubMed
description In this work, the Raman spectroscopy mapping technique is used for the analysis of mechanical strain in Bi(2)Se(3) thin films of various (3–400 nm) thicknesses synthesized by physical vapour deposition on amorphous quartz and single-layer graphene substrates. The evaluation of strain effects is based on the correlation analysis of in-plane (E(2)(g)) and out-of-plane (A(2)(1g)) Raman mode positions. For Bi(2)Se(3) films deposited on quartz, experimental datapoints are scattered along the line with a slope [Image: see text] of ∼0.85, related to the distribution of hydrostatic strain. In contrast to quartz/Bi(2)Se(3) samples, for graphene/Bi(2)Se(3) heterostructures with the same thicknesses, an additional negative slope of ∼−0.85, which can be associated with the distribution of the in-plane (a–b) biaxial tensile strain due to the film–substrate lattice mismatch, is observed. The algorithm of phonon deformation potential (PDP) calculation based on the proposed strain analysis for the 3 nm thick Bi(2)Se(3) film deposited on the graphene substrate, where the strain is considered to be coherent across the thickness, is demonstrated. The PDPs for biaxial in-plane strain of the Bi(2)Se(3) 3 nm film in in-plane and out-of-plane modes are equal to −7.64 cm(−1)/% and −6.97 cm(−1)/%, respectively.
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spelling pubmed-94190752022-09-20 Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique Niherysh, K. A. Andzane, J. Mikhalik, M. M. Zavadsky, S. M. Dobrokhotov, P. L. Lombardi, F. Prischepa, S. L. Komissarov, I. V. Erts, D. Nanoscale Adv Chemistry In this work, the Raman spectroscopy mapping technique is used for the analysis of mechanical strain in Bi(2)Se(3) thin films of various (3–400 nm) thicknesses synthesized by physical vapour deposition on amorphous quartz and single-layer graphene substrates. The evaluation of strain effects is based on the correlation analysis of in-plane (E(2)(g)) and out-of-plane (A(2)(1g)) Raman mode positions. For Bi(2)Se(3) films deposited on quartz, experimental datapoints are scattered along the line with a slope [Image: see text] of ∼0.85, related to the distribution of hydrostatic strain. In contrast to quartz/Bi(2)Se(3) samples, for graphene/Bi(2)Se(3) heterostructures with the same thicknesses, an additional negative slope of ∼−0.85, which can be associated with the distribution of the in-plane (a–b) biaxial tensile strain due to the film–substrate lattice mismatch, is observed. The algorithm of phonon deformation potential (PDP) calculation based on the proposed strain analysis for the 3 nm thick Bi(2)Se(3) film deposited on the graphene substrate, where the strain is considered to be coherent across the thickness, is demonstrated. The PDPs for biaxial in-plane strain of the Bi(2)Se(3) 3 nm film in in-plane and out-of-plane modes are equal to −7.64 cm(−1)/% and −6.97 cm(−1)/%, respectively. RSC 2021-10-08 /pmc/articles/PMC9419075/ /pubmed/36133484 http://dx.doi.org/10.1039/d1na00390a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Niherysh, K. A.
Andzane, J.
Mikhalik, M. M.
Zavadsky, S. M.
Dobrokhotov, P. L.
Lombardi, F.
Prischepa, S. L.
Komissarov, I. V.
Erts, D.
Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title_full Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title_fullStr Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title_full_unstemmed Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title_short Correlation analysis of vibration modes in physical vapour deposited Bi(2)Se(3) thin films probed by the Raman mapping technique
title_sort correlation analysis of vibration modes in physical vapour deposited bi(2)se(3) thin films probed by the raman mapping technique
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419075/
https://www.ncbi.nlm.nih.gov/pubmed/36133484
http://dx.doi.org/10.1039/d1na00390a
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