University proceedings. Volga region. Physical and mathematical sciences
RUS  ENG    JOURNALS   PEOPLE   ORGANISATIONS   CONFERENCES   SEMINARS   VIDEO LIBRARY   PACKAGE AMSBIB  
General information
Latest issue
Archive

Search papers
Search references

RSS
Latest issue
Current issues
Archive issues
What is RSS



University proceedings. Volga region. Physical and mathematical sciences:
Year:
Volume:
Issue:
Page:
Find






Personal entry:
Login:
Password:
Save password
Enter
Forgotten password?
Register


University proceedings. Volga region. Physical and mathematical sciences, 2023, Issue 1, Pages 85–92
DOI: https://doi.org/10.21685/2072-3040-2023-1-7
(Mi ivpnz524)
 

Physics

Consideration of quantum-dimensional effects in designing plasmon-acoustic devices of the terahertz frequency range

R. A. Brazwe, D. A. Dolgov

Ulyanovsk State Technical University, Ulyanovsk
References:
Abstract: Background. Graphene and boron nitride nanoribbons of hexagonal syngony are promising materials for use in nanoacoustics and nanoplasmonics as transmission lines of the terahertz frequency range. Meanwhile, their nanoscale width leads to a number of quantum-dimensional effects. There are resistances, inductances and capacitances per unit length which cannot be ignored even in the ballistic regime of the free charges transport. The aim of the study is to show the significant influence of these values on the electrical and wave parameters of such devises. Materials and methods. The objects of the study were nanoribbons made of graphene (Gr) and 2D hexagonal boron nitride (h-BN) isomorphic to it. The work used well-known analytical methods of classical microwave electronics, quantum physics and the band theory of the solid state physics in relation to nanoscale 2D crystal structures. Results. Expressions are obtained for the values of the quantum resistance, inductance, and capacitance per unit length of an electrically conductive nanoribbon of limited width depending on the corresponding quanta and the number of channels of electrical conductivity due to the width of the nanoribbon, the Fermi wave number for the free carriers, spin and valley degeneracy of their energy states. It is shown that the quantum inductance and capacitance of a nanoribbon at terahertz frequencies can exceed by two orders of magnitude the corresponding characteristics of the same nanoribbon for surface plasmon polaritons. The results are illustrated by the example of a plasmon-acoustic transducer of the terahertz frequency range on the graphene-hexagonal boron nitride structure. Conclusions. The quantum inductance and capacitance per unit length of graphene nanoribbon at terahertz frequencies can exceed their corresponding values for surface plasmon polaritons in the same nanoribbon by two orders of magnitude. This result taking into account quantum-dimensional effects when designing nanoelectromechanical devises.
Keywords: quanta of electrical resistance, inductance and capacitance, surface plasmon polaritons, plasmon-acoustic devices, terahertzes.
Document Type: Article
UDC: 621.391:53.043
Language: Russian
Citation: R. A. Brazwe, D. A. Dolgov, “Consideration of quantum-dimensional effects in designing plasmon-acoustic devices of the terahertz frequency range”, University proceedings. Volga region. Physical and mathematical sciences, 2023, no. 1, 85–92
Citation in format AMSBIB
\Bibitem{BraDol23}
\by R.~A.~Brazwe, D.~A.~Dolgov
\paper Consideration of quantum-dimensional effects in designing plasmon-acoustic devices of the terahertz frequency range
\jour University proceedings. Volga region. Physical and mathematical sciences
\yr 2023
\issue 1
\pages 85--92
\mathnet{http://mi.mathnet.ru/ivpnz524}
\crossref{https://doi.org/10.21685/2072-3040-2023-1-7}
Linking options:
  • https://www.mathnet.ru/eng/ivpnz524
  • https://www.mathnet.ru/eng/ivpnz/y2023/i1/p85
  • Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    University proceedings. Volga region. Physical and mathematical sciences
    Statistics & downloads:
    Abstract page:27
    Full-text PDF :6
    References:7
     
      Contact us:
     Terms of Use  Registration to the website  Logotypes © Steklov Mathematical Institute RAS, 2024