Organic self-assembled monolayers on superconducting NbSe2: Interfacial electronic structure and energetics
Affiliation
Department of Chemistry and Biochemistry, The University of ArizonaUniversity of Arizona
Issue Date
2022-05-16Keywords
density functional theory calculationsorganic self-assembled monolayer
organic/NbSe2interface
transition metal dichalcogenide
work-function modulation
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IOP PublishingCitation
Ni, X., Li, H., & Brédas, J.-L. (2022). Organic self-assembled monolayers on superconducting NbSe2: Interfacial electronic structure and energetics. Journal of Physics: Condensed Matter, 34(29).Rights
© 2022 IOP Publishing Ltd.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
While organic self-assembled monolayers (SAMs) have been widely used to modify the work function of metal and metal-oxide surfaces, their application to tune the critical temperature of a superconductor has only been considered recently when SAMs were deposited on NbSe2 monolayers (Calavalle et al 2021 Nano Lett. 21 136-143). Here, we describe the results of density functional theory calculations performed on the experimentally reported organic/NbSe2 systems. Our objectives are: (i) to determine how the organic layers impact the NbSe2 work function and electronic density of states; (ii) to understand the possible correlation with the experimental variations in superconducting behavior upon SAM deposition. We find that, upon adsorption of the organic monolayers, the work-function modulation induced by the SAM and interface dipoles is consistent with the experimental results. However, there occurs no significant difference in the electronic density of states near the Fermi level, a consequence of the absence of any charge transfer across the organic/NbSe2 interfaces. Therefore, our results indicate that it is not a SAM-induced tuning of the NbSe2 density of states near the Fermi level that leads to the tuning of the superconducting critical temperature. This calls for further explorations, both experimentally and theoretically, of the mechanism underlying the superconducting critical temperature variation upon formation of SAM/NbSe2 interfaces.Note
12 month embargo; published: 16 May 2022ISSN
0953-8984EISSN
1361-648XPubMed ID
35483349Version
Final accepted manuscriptae974a485f413a2113503eed53cd6c53
10.1088/1361-648x/ac6b75
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