Stability, Electronic and Phononic Properties of Ss and 1t Structures of Sitex (x = 1, 2) and Their Vertical Heterostructures

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Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

IOP Publishing Ltd.

Open Access Color

BRONZE

Green Open Access

Yes

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4

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4

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No
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Abstract

By performing first-principles calculations, we predict a novel, stable single layer phase of silicon ditelluride, 1T-SiTe2, and its possible vertical heterostructures with single layer β-SiTe. Structural optimization and phonon calculations reveal that 1T-SiTe2 structure has a dynamically stable ground state. Further analysis of the vibrational spectrum at the - point shows that single layer 1T-SiTe2 has characteristic phonon modes at 80, 149, 191 and 294 cm-1. Electronic-band structure demonstrates that 1T-SiTe2 phase exhibits a nonmagnetic metallic ground state with a negligible intrinsic spinorbit splitting. Moreover, it is shown that similar structural parameters of 1T-SiTe2 and existing β-SiTe phases allows construction of 1T-β heterostructures with a negligible lattice mismatch. In this regard, it is found that two energetically favorable stacking orders, namely AA and ATB, have distinctive shear and layer breathing phonon modes. It is important to note that the combination of semiconducting β-SiTe and metallic 1T-SiTe2 building blocks forms ultra-thin Schottky barriers that can be used in nanoscale optoelectronic device technologies.

Description

Keywords

Schottky barriers, Silicon-based nanomaterials, Vertical heterostructures, Monolayers, Structural optimization, Silicon ditelluride, Monolayers, Silicon-based nanomaterials, Silicon ditelluride, Structural optimization, Vertical heterostructures, Schottky barriers

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences

Citation

Kandemir, A., İyikanat, F., and Şahin, H. (2017). Stability, electronic and phononic properties of β and 1T structures of SiTex (x = 1, 2) and their vertical heterostructures. Journal of Physics Condensed Matter, 29(39). doi:10.1088/1361-648X/aa80b1

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OpenCitations Citation Count
9

Source

Journal of Physics Condensed Matter

Volume

29

Issue

39

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End Page

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CrossRef : 3

Scopus : 10

PubMed : 1

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Mendeley Readers : 16

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10

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Web of Science™ Citations

8

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Page Views

839

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Downloads

530

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