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Revealing the Quasi-Periodic Crystallographic Structure of Self-Assembled SnTiS3 Misfit Compound

Permanent lenke
https://hdl.handle.net/10037/24156
DOI
https://doi.org/10.1021/acs.jpcc.0c10756
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article.pdf (8.524Mb)
Publisert versjon (PDF)
Dato
2021-04-28
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Forfatter
Rajput, Nitul S.; Baik, Hionsuck; Lu, Jin-You; Tamalampudi, Srinivasa Reddy; Sankar, Raman; Al Ghaferi, Amal; Chiesa, Matteo
Sammendrag
Chemical vapor transport synthesis of SnTiS3 yields a self-assembled heterostructure of two distinct constituent materials, the semiconductor SnS and the semimetal TiS2. The misfit layer compound, although thermodynamically stable, is structurally complex, and precise understanding of the structure is necessary for designing nanoengineered heterojunction compound devices or for theoretical studies. In our work, we reveal the unique complexity of the quasi-periodic structure of this heterostructure by systematically investigating the misfit compound using a set of advanced electron microscopy techniques. X-ray and electron diffraction patterns along with high-resolution scanning/transmission electron microscopy images obtained from different crystallographic orientations resolve the complexity of the sublattice component layer structure and reveal the uniquely bonded alignment among interlayers and a quasi-periodic arrangement of the sublayers. Density functional theory calculations embedded with the extracted structural information provide quantitative insights into the formation of self-assembled heterojunction structures where the nonpolar van der Waals interaction is found to play a dominant role in the structural alignment over the polar interlayer interaction.
Forlag
American Chemical Society
Sitering
Rajput, Baik, Lu, Tamalampudi, Sankar, Al Ghaferi, Chiesa. Revealing the Quasi-Periodic Crystallographic Structure of Self-Assembled SnTiS3Misfit Compound. Journal of Physical Chemistry C. 2021;125(18):9956-9964
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  • Artikler, rapporter og annet (fysikk og teknologi) [1057]
Copyright 2021 The Author(s)

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