Vestnik Sankt-Peterburgskogo Universiteta. Seriya 10. Prikladnaya Matematika. Informatika. Protsessy Upravleniya
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Vestnik Sankt-Peterburgskogo Universiteta. Seriya 10. Prikladnaya Matematika. Informatika. Protsessy Upravleniya, 2022, Volume 18, Issue 1, Pages 52–62
DOI: https://doi.org/10.21638/11701/spbu10.2022.104
(Mi vspui514)
 

This article is cited in 1 scientific paper (total in 1 paper)

Applied mathematics

Calculation of the ionization potential of zinc and graphene phthalocyaninates on the surface of dielectrics

D. Yu. Kuranov, T. A. Andreeva, M. E. Bedrina

St Petersburg State University, 7–9, Universitetskaya nab., St Petersburg, 199034, Russian Federation
Full-text PDF (951 kB) Citations (1)
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Abstract: A mathematical model is proposed for calculating the ionization potentials of molecules on the surface of dielectrics in order to quantify changes in the electronic characteristics of materials on a substrate. The semiconductor and photoelectronic properties of nanosystems based on phthalocyanine derivatives are determined by the electronic structure of molecules. Based on the zinc phthalocyaninate molecule ZnC$_{32}$N$_8$H$_{16}$, model structures are constructed that increase this molecule by attaching benzene rings ZnC$_{48}$N$_8$H$_{24}$, ZnC$_{64}$N$_8$H$_{32}$ and a model simulating the film structure of Zn$_4$C$_{120}$N$_{32}$ H$_{48}$. Graphene was considered as a nanostructure modeling a fragment of a monomer lm. The ionization potentials of these compounds on the surface of magnesium oxide, sodium chloride and silicon are calculated. In the presence of a substrate, the ionization potentials of all nanostructures decrease, while the values of the surface ionization potentials remain fundamentally dierent in their magnitude for all compounds. The compound ZnC$_{64}$N$_8$H$_{32}$ sprayed onto the surface exhibits the best photoelectronic properties, its surface ionization potential is comparable to graphene.
Keywords: phthalocyanine zinc, graphene, structure, dielectric surface, ionization potential.
Funding agency Grant number
Russian Foundation for Basic Research 20-07-01086
This work was supported by the Russian Foundation for Basic Research (project N 20-07-01086).
Received: November 6, 2021
Accepted: February 1, 2022
Document Type: Article
UDC: 519.63, 51-73
MSC: 82D80
Language: Russian
Citation: D. Yu. Kuranov, T. A. Andreeva, M. E. Bedrina, “Calculation of the ionization potential of zinc and graphene phthalocyaninates on the surface of dielectrics”, Vestnik S.-Petersburg Univ. Ser. 10. Prikl. Mat. Inform. Prots. Upr., 18:1 (2022), 52–62
Citation in format AMSBIB
\Bibitem{KurAndBed22}
\by D.~Yu.~Kuranov, T.~A.~Andreeva, M.~E.~Bedrina
\paper Calculation of the ionization potential of zinc and graphene phthalocyaninates on the surface of dielectrics
\jour Vestnik S.-Petersburg Univ. Ser. 10. Prikl. Mat. Inform. Prots. Upr.
\yr 2022
\vol 18
\issue 1
\pages 52--62
\mathnet{http://mi.mathnet.ru/vspui514}
\crossref{https://doi.org/10.21638/11701/spbu10.2022.104}
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  • This publication is cited in the following 1 articles:
    Citing articles in Google Scholar: Russian citations, English citations
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    Вестник Санкт-Петербургского университета. Серия 10. Прикладная математика. Информатика. Процессы управления
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    References:12
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